Smart artificial intelligence swing pillow for preventing snoring

The smart AI swing pillow addresses the limitations of existing smart pillows by using a motor-driven sliding mechanism to turn the user's head based on snoring patterns, enhancing sleep quality and reducing snoring and apnea without disrupting sleep.

WO2025170112A1PCT designated stage Publication Date: 2025-08-14BOAZ HEALTH INC
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Patent Information

Application Number
PCT/KR2024/008304
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2024-02-07
Filing Date
2024-06-17
Publication Date
2025-08-14

AI Technical Summary

Technical Problem

Existing smart pillows struggle with low accuracy in distinguishing snoring from other noises, often fail to effectively prevent snoring and sleep apnea, and their effectiveness is reduced when multiple users share a room, while current solutions disrupt sleep with alarms or discomfort.

Method used

A smart AI swing pillow that uses a sliding mechanism to gently turn the user's head left or right based on inferred snoring patterns, utilizing a motor-driven system with a control unit to analyze snoring sounds and adjust the head support's movement.

Benefits of technology

Effectively reduces snoring and sleep apnea by naturally turning the user's head, improving sleep quality without disturbing the sleeper or others, and maintaining accuracy in snoring detection.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to a smart artificial intelligence swing pillow for preventing snoring, which causes the head of a user to be turned to the left or right through a sliding operation on the basis of the result of inferring the user's snoring pattern, thereby removing sleep-disrupting factors, such as snoring or sleep apnea, so as to improve the quality of sleep.
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Description

Smart AI Swing Pillow to Prevent Snoring

[0001] The present invention relates to a smart artificial intelligence swing pillow for preventing snoring, and more specifically, to a smart artificial intelligence swing pillow for preventing snoring that improves the quality of sleep by inducing the user to turn his or her head to the left or right through a sliding motion based on the result of inferring the user's snoring pattern, thereby solving sleep-disturbing factors such as snoring symptoms or sleep apnea.

[0002]

[0003] Recently, as healthy sleep management has emerged as one of the concerns of modern people, smart functions are being added to sleep-related products such as pillows and mattresses.

[0004] Meanwhile, snoring is a prominent factor that disrupts healthy sleep. Snoring is a symptom caused by a narrowing or obstruction of the upper airway (nasal cavity, pharynx, and larynx), the breathing space. The main causes include a loss of muscle elasticity due to aging, the expansion of structures surrounding the airway due to obesity, which narrows the airway, and a narrow jaw structure or space that obstructs the airway.

[0005] Snoring isn't just a noise-induced problem; it can also be accompanied by chronic fatigue and contribute to persistent high blood pressure or diabetes. Furthermore, if snoring becomes severe, it can lead to sleep apnea. Sleep apnea can interfere with the body's oxygen supply, leading to chronic bronchitis, various heart diseases such as myocardial infarction, and stroke.

[0006] Accordingly, smart pillows have recently been developed and introduced to improve snoring by securing the sleeper's airway. However, existing smart pillows have a problem with their low accuracy in distinguishing snoring from other noises, making it difficult to clearly detect snoring. Furthermore, when two or more people sleep in the same room, their snoring-reducing effect is significantly reduced.

[0007] In addition, in the case of conventional smart pillows, they only mention technology that simply determines the sound of snoring and wakes the user with an alarm or forcibly causes discomfort in the neck or head to induce tossing and turning, and there is currently insufficient research and development on technology that can prevent snoring and sleep apnea without disturbing sleep by naturally turning the user's head based on the user's snoring pattern.

[0008]

[0009] The present invention aims to solve the above problems by providing a smart artificial intelligence swing pillow for preventing snoring, which improves the quality of sleep by inducing the user to turn his or her head to the left or right through a sliding motion based on the result of inferring the user's snoring pattern, thereby eliminating sleep-disturbing factors such as snoring symptoms or sleep apnea.

[0010]

[0011] A smart artificial intelligence swing pillow for preventing snoring according to one embodiment of the present invention may include a support body part (110) that is seated on a floor surface, a head support part (120) on which a user's head is seated, and which slides left and right while seated on the upper side of the support body part (110) to turn the user's head left and right, and a driving part (130) that is provided between the support body part (110) and the head support part (120) and uses motor power to slide the head support part (120).

[0012] In one embodiment, the support body (110) is formed so that the heights of the left and right ends are relatively high and the height of the center is relatively low to form a curved groove (111), and the head support (120) can slide left and right along the curved groove (111).

[0013] In one embodiment, the upper side of the head support (120) is formed with relatively high heights at the left and right ends and relatively low heights at the center to form a curved valley (121) to support the user's head, and the lower side of the head support (120) can be formed in a curved shape to correspond to the curved valley (111).

[0014] In one embodiment, a fastening means (122) may be provided on the lower side of the head support member (120) that is fastened to a fastening slit (112) provided on the curved bone (111) and moves left and right while being fastened to the fastening slit (112) when the head support member (120) slides.

[0015] In one embodiment, the driving unit (130) is inserted into a receiving groove (113) provided on the curved groove (111), and includes a rotational shaft module (131) that rotates with the width direction of the support body part (110) as the rotational axis, a worm gear (132) provided on the rotational shaft module (131) and rotates together when the rotational shaft module (131) rotates, a worm roller (133) provided on the rotational shaft module (131) and rotates together when the rotational shaft module (131) rotates while in contact with the lower surface of the head support part (120) to provide frictional force so that the head support part (120) slides in the left and right direction, a worm shaft (134) that is engaged with and coupled to the worm gear (132), and a worm shaft (134) that is connected to the worm shaft (134) within the support body part (110) and rotates the worm shaft (134) clockwise or counterclockwise using a rotational force, thereby rotating the worm The worm roller (133) connected via the gear (132) and the rotation shaft module (131) may include a stepping motor (135) that rotates clockwise or counterclockwise.

[0016] In one embodiment, bearings (131a) may be provided on both ends of the rotary shaft module (131) to minimize frictional force.

[0017] In one embodiment, a bolt fastening groove (132a) may be formed on one side of the worm gear (132) to fasten a bolt to prevent the worm gear (132) from rotating when the worm gear (132) is inserted into the rotation shaft module (131).

[0018] In one embodiment, the end of the worm shaft (134) is inserted into a worm shaft support (114) provided within the support body (110), and a bearing (114a) may be provided inside the worm shaft support (114) to minimize frictional force when the worm shaft (134) rotates.

[0019] In one embodiment, a stepping motor fixing bracket (115) that supports the stepping motor (135) may be provided within the support body (110).

[0020] In one embodiment, the present invention may further include a control unit (140) that analyzes a user's snoring sound input through a microphone device provided in a user terminal and controls the rotation speed, rotation direction, and number of rotations of the stepping motor (135) based on a snoring pattern inference value according to the analysis result.

[0021]

[0022] According to one aspect of the present invention, by inducing the user to turn his or her head to the left or right through a sliding motion based on the result of inferring the user's snoring pattern, it has the advantage of improving the quality of sleep by eliminating sleep-disturbing factors such as snoring symptoms or sleep apnea.

[0023]

[0024] FIG. 1 is a drawing showing the overall configuration of a smart artificial intelligence swing pillow (100) for preventing snoring according to one embodiment of the present invention.

[0025] Figure 2 is a drawing schematically showing the shape of a smart artificial intelligence swing pillow (100) for preventing snoring.

[0026] Figure 3 is a drawing showing the concept of a head support member (120) sliding from a support body member (110).

[0027] Figure 4 is a drawing showing a cross-section of a smart artificial intelligence swing pillow (100) for preventing snoring according to the present invention.

[0028] Figure 5 is a drawing showing the inner surface of the support body (110) in more detail.

[0029] Figure 6 is a drawing showing the lower cover of the support body (110).

[0030] Figure 7 is a drawing showing the lower surface of the head support (120) in more detail.

[0031] Figure 8 is a drawing showing the overall configuration of the driving unit (130) in more detail.

[0032] Figure 9 is a drawing showing the rotation shaft module (131), worm gear (132), and worm roller (133) in more detail.

[0033] Figure 10 is a cross-sectional view showing the combined state of a worm gear (132) and a worm shaft (134).

[0034] Fig. 11 is a drawing showing a concept for calculating the torque and required reduction ratio of the worm roller (133) according to the head load of a user seated on a head support member (120).

[0035] Fig. 12 is a drawing showing a concept of controlling a stepping motor (135) based on the results of analyzing a user's snoring sound in a control unit (140).

[0036]

[0037] This will become clearer with reference to the embodiments described below in detail with reference to the drawings. However, the present invention is not limited to the embodiments disclosed below, but may be implemented in various different forms. These embodiments are provided solely to ensure that the disclosure of the present invention is complete and to fully inform those skilled in the art of the scope of the invention. The present invention is defined solely by the scope of the claims. Like reference numerals designate like elements throughout the specification.

[0038] When one component is referred to as being "connected to" or "coupled to" another component, it includes both cases where it is directly connected or coupled to the other component, or cases where there is another component intervening therebetween. Conversely, when one component is referred to as being "directly connected to" or "directly coupled to" another component, it indicates that there is no other component intervening therebetween. "And / or" includes each and any combination of one or more of the mentioned items.

[0039] The terminology used herein is for the purpose of describing embodiments only and is not intended to limit the present invention. In this specification, the singular also includes the plural unless specifically stated otherwise. As used herein, the terms "comprises" and / or "comprising" do not exclude the presence or addition of one or more other components, steps, operations, and / or elements.

[0040] Although terms like "first" and "second" are used to describe various components, these components are not limited by these terms. These terms are merely used to distinguish one component from another. Therefore, it should be understood that a "first" component referred to below may also be a "second" component within the technical scope of the present invention.

[0041] Unless otherwise defined, all terms (including technical and scientific terms) used herein may be used in their common sense to those of ordinary skill in the art to which the present invention pertains. Furthermore, terms defined in commonly used dictionaries are not to be interpreted ideally or excessively unless explicitly and specifically defined otherwise.

[0042] The term 'part' or 'module' used in this embodiment means a software or hardware component such as an FPGA or ASIC, and the 'part' or 'module' performs certain roles. However, the meaning of 'part' or 'module' is not limited to software or hardware. The 'part' or 'module' may be configured to be on an addressable storage medium and may be configured to play one or more processors. Thus, as an example, the 'part' or 'module' may include software components, object-oriented software components, functions, subroutines, segments of program code, microcode, circuits, data, databases, data structures, tables, arrays, and variables. The functionality provided within the components and 'parts' or 'modules' may be combined into a smaller number of components and 'parts' or 'modules', or may be further separated into additional components and 'parts' or 'modules'.

[0043]

[0044] FIG. 1 is a drawing showing the overall configuration of a smart artificial intelligence swing pillow (100) for preventing snoring according to one embodiment of the present invention, FIG. 2 is a drawing schematically showing the shape of a smart artificial intelligence swing pillow (100) for preventing snoring, FIG. 3 is a drawing showing the concept of a head support part (120) sliding from a support body part (110), and FIG. 4 is a drawing showing a cross-section of a smart artificial intelligence swing pillow (100) for preventing snoring according to the present invention.

[0045] Looking at FIGS. 1 to 4, a smart artificial intelligence swing pillow (100) for preventing snoring according to one embodiment of the present invention can be largely configured to include a support body (110), a head support part (120), a driving part (130), and a control part (140) that controls the driving part (130).

[0046] The support body (110) is placed on the floor surface, more specifically, on the bed on which the user lies, and supports the head support (120) described later when it slides left and right.

[0047] This support body (110) may be made of a material having sufficient strength to support the user's head load (e.g., 6 kg), and a hollow space may be formed inside. The shape of the support body (110) will be described in more detail as follows.

[0048] Figure 5 is a drawing showing the inner surface of the support body part (110) in more detail, and Figure 6 is a drawing showing the lower cover of the support body part (110).

[0049] Referring to FIGS. 5 and 6, the support body (110) has a flat bottom surface and a curved groove (111) formed on the upper side with relatively high left and right ends and relatively low center height. As a hollow space is formed inside the support body (110), a driving unit (130) described later is accommodated therein.

[0050] In the case of the curved groove (111), the head support member (120) described later has a curvature that allows it to slide smoothly to the left or right, and the curved groove (111) is provided with a binding slit (112) and a receiving groove (113), and a worm shaft support member (114) may be provided on the inside.

[0051] The binding slit (112) refers to a space for inserting a binding means (122) protruding downward from the lower side of the head support (120) described later, and as long as the binding means (122) is bound to the binding slit (112), the head support (120) can be prevented from being lifted upward or separated from the support body (110).

[0052] One end of the binding slit (112) is formed wide enough to allow the binding means (122) to be inserted, and the remaining area is formed narrow enough to prevent the binding means (122) from being caught and lifted upward.

[0053] The receiving groove (113) refers to a space into which the rotation shaft module (131) of the driving unit (130) described later is inserted, and the rotation shaft module (131) can be positioned within the receiving groove (113) such that both ends face the width direction of the support body (110). In addition, the rotation shaft module (131) can be rotated within the receiving groove (113) with both ends serving as the rotation axis.

[0054] The worm shaft support (114) is a space into which the end of the worm shaft (134) described later is inserted, and a bearing (114a) is provided inside the worm shaft support (114) to minimize the frictional force generated at the end of the worm shaft (134) when the worm shaft (134) rotates. The bearing (114a) binds the end of the worm shaft (134), and can also play a role in supporting the worm shaft (134) so ​​that it can rotate stably while maintaining a horizontal state when the worm shaft (134) rotates.

[0055] Meanwhile, in one embodiment, a plurality of wheels are provided on the curved groove (111), and wheel grooves are engraved inward to accommodate the plurality of wheels. At least four wheel grooves may be provided, and the wheels are provided to be rotatable within the wheel grooves. Each wheel maintains contact with the lower surface of the head support (120) described below, and when the head support (120) slides to the left or right, the wheel supports the lower surface of the head support (120) and rotates so that the head support (120) can slide smoothly to the left or right. These plurality of wheels may be made of rubber or silicone to prevent slipping.

[0056] Additionally, in one embodiment, a lower cover is provided on the lower side of the support body part (110). The lower cover can be bolted to the support body part (110) on the lower side of the support body part (110) using a number of bolts, and the lower cover can be separated from the support body part (110) by releasing the bolts.

[0057]

[0058] Figure 7 is a drawing showing the lower surface of the head support (120) in more detail.

[0059] Looking at Figure 7, the head support member (120) serves to ensure that the user's head is seated, and while seated on the upper side of the support body member (110) as described above, it slides left and right along the curved groove (111) to turn the user's head left and right.

[0060] More specifically, the head support (120) is formed to correspond to the shape of the curved groove (111). The upper part of the head support (120) is formed to have relatively high heights at the left and right ends and relatively low heights at the center, thereby forming a curved groove (121). The user's head can be placed on the curved groove (121).

[0061] The lower part of the head support (120) is formed in a curved shape similar to the curved groove (111) discussed above, and when the head support (120) slides in the left or right direction, the user's head turns in the left or right direction while maintaining its position while being seated in the curved groove (121).

[0062] This head support (120) can be slidably moved in the left or right direction by the driving unit (130) described below. To this end, a plurality of wheel slits are provided on the lower side of the head support (120) to allow the plurality of wheels of the support body (110) described above to be in close contact with each other. The wheel slits are formed along the longitudinal direction on the lower side of the head support (120), and when the head support (120) is seated on the support body (110), the plurality of wheels of the support body (110) can be in close contact with the wheel slits of the head support (120). In this state, when the head support (120) is slidably moved in the left or right direction, the plurality of wheels rotate along the wheel slits.

[0063] In addition, a contact pad is provided on the lower side of the head support member (120) to receive the rotational force of the worm roller (133) while in close contact with the worm roller (133) of the driving member (130) described later.

[0064] The contact pad is formed lengthwise along the lower side of the head support (120) and is positioned to contact the worm roller (133) described later. At this time, since the material properties of the contact pad prevent slipping, the contact pad is pushed out when the worm roller (133) rotates. The contact pad is positioned on the lower side of the head support (120), so that the head support (120) slides to the left or right accordingly. This contact pad may be made of rubber or silicone.

[0065] In addition, a fastening means (122) is provided on the lower side of the head support member (120) to be inserted into the fastening slit (112) discussed above. The fastening means (122) is fastened to the fastening slit (112), and when the head support member (120) slides, the fastening means (122) moves along the fastening slit (112) while being fastened to the fastening slit (112).

[0066] Meanwhile, the head support (120) may be made of a material that is strong enough to sufficiently support the user's head load (e.g., 6 kg), and a soft cover may be placed on the curved groove (121) on the upper side of the head support (120). For the cover, any material generally used as a pillow cover may be applied, and a material that can be freely separated from the head support (120) and washed with water when contaminated may be applied.

[0067] In addition, although not shown in the drawing, a sensor (not shown) may be provided in the binding slit (112) of the support body portion (110) discussed above to detect that the binding means (122) does not reach the end of the binding slit (112). The sensor may be applied to limit the range of movement of the binding means (122) so that it does not reach the end of the binding slit (112) and is separated or detached from the binding slit (112). In addition, the sensor can determine whether the current head support portion (120) is tilted or located at the center of the curved groove (111) based on the position of the binding means (122). Accordingly, when the user does not use the smart artificial intelligence swing pillow (100) for preventing snoring, the control unit (140) described below can control the stepping motor (135) of the driving unit (130) based on the detection result of the sensor, thereby controlling the current state of the head support unit (120) (meaning a state of sliding to the left or right) to return to the original state (a state in which the head support unit (120) is aligned to the center of the curved groove (111).

[0068]

[0069] The driving unit (130) provides power to slide the head support unit (120) using motor power between the support body unit (110) and the head support unit (120). This will be examined in more detail as follows.

[0070] Fig. 8 is a drawing showing the overall configuration of the driving unit (130) in more detail, Fig. 9 is a drawing showing the rotation shaft module (131), the worm gear (132), and the worm roller (133) in more detail, and Fig. 10 is a cross-sectional view showing the coupling state of the worm gear (132) and the worm shaft (134).

[0071] Looking at FIGS. 8 to 10, the driving unit (130) can be largely configured to include a rotation shaft module (131), a worm gear (132), a worm roller (133), a worm shaft (134), and a stepping motor (135).

[0072] The rotation shaft module (131) is inserted into a receiving groove (113) formed on a curved groove (111) of the support body part (110) and functions to rotate with the width direction of the support body part (110) as the rotation axis. A worm gear (132) and a worm roller (133) are provided in the rotation shaft module (131). In addition, bearings (131a) may be provided at both ends of the rotation shaft module (131) to minimize frictional force when the rotation shaft module (131) rotates.

[0073] The worm gear (132) is provided on the rotation shaft module (131), and when the worm shaft (134) is rotated by the stepping motor (135) while being meshed with the worm shaft (134) described later, the worm gear (132) rotates together, thereby transmitting the rotational power of the stepping motor (135) to the worm roller (133) of the rotation shaft module (131). A bolt fastening groove (132a) may be provided on one side of the worm gear (132) to fasten a bolt to prevent the worm gear (132) from spinning when the worm gear (132) is inserted into the rotation shaft module (131).

[0074] The worm roller (133) is provided at the center of the rotation axis module (131) and comes into contact with the contact pad on the lower surface of the head support (120) discussed above. In this state, when the worm gear (132) transmits the rotational power of the stepping motor (135), it rotates and pushes the contact pad. Here, pushing the contact pad means sliding the head support (120) in the left or right direction.

[0075] These worm rollers (133) may be made of rubber or silicone to prevent slipping.

[0076] The worm shaft (134) is meshed with the worm gear (132) and is meshed with the worm gear (132) while being rotated at a 90-degree angle to the worm gear (132). One end of the worm shaft (134) is connected to a stepping motor (135), so that the worm shaft rotates clockwise or counterclockwise by the motor driving force of the stepping motor (135). In addition, the other end of the worm shaft (134) can be inserted into the worm shaft support (114) provided in the support body portion (110) described above.

[0077] At this time, the worm shaft (134) may be connected to the rotation axis of the stepping motor (135) through a fitting joint, rather than being connected integrally with the stepping motor (135). Therefore, when the worm shaft (134) wears out, the worm shaft (134) can be freely replaced from the stepping motor (135).

[0078] The stepping motor (135) is connected to the worm shaft (134) within the support body (110), and uses the driving force to rotate the worm shaft (134) clockwise or counterclockwise, thereby causing the worm roller (133) connected via the worm gear (132) and the rotation shaft module (131) to rotate clockwise or counterclockwise.

[0079] More specifically, the stepping motor (135) can be firmly fixed within the support body (110) through the stepping motor fixing bracket (115) provided within the support body (110), and has a rotational driving force through external electricity. This causes the worm shaft (134) to rotate, and the worm gear (132) meshed with the worm shaft (134) rotates to rotate the rotation shaft module (131). The rotation of the rotation shaft module (131) causes the worm roller (133) to rotate, and accordingly, the worm roller (133) pushes the contact pad, resulting in the head support (120) sliding in the left or right direction.

[0080] Meanwhile, the concept of calculating the torque and required reduction ratio of the worm roller (133) according to the user's head load between the worm gear (132) and the worm shaft (134) in the present invention is as follows.

[0081] Fig. 11 is a drawing showing a concept for calculating the torque and required reduction ratio of the worm roller (133) according to the head load of a user seated on a head support member (120).

[0082] Looking at Figure 11, assuming that the user's head load is 6 kg, the user's head load applied to the head support (120) can be calculated using the following mathematical formula.

[0083]

[0084] Here, m is the user head load (kg) and g is the acceleration of gravity (m / s 2 ), and θ is the angle formed by the worm roller (133) and the user's head.

[0085] In addition, the torque of the worm roller (133) to support the user's head load applied to the worm roller (133) during this process can be calculated using the following mathematical formula.

[0086]

[0087]

[0088]

[0089] Additionally, the required reduction ratio at this time can be calculated using the following mathematical formula.

[0090]

[0091]

[0092]

[0093] Meanwhile, the calculated values ​​described above can be changed at any time depending on the user's head load.

[0094]

[0095] Next, we will examine the process of controlling the stepping motor (135) based on the results of analyzing the user's snoring sound in the control unit (140) to induce the user's head to turn.

[0096] Fig. 12 is a drawing showing a concept of controlling a stepping motor (135) based on the results of analyzing a user's snoring sound in a control unit (140).

[0097] Referring to Fig. 12, the control unit (140) analyzes the user's snoring sound input through a microphone device provided in the user terminal, and controls the rotation speed, rotation direction, and number of rotations of the stepping motor (135) based on the snoring pattern inference value according to the analysis result.

[0098] To this end, the control unit (140) can provide a dedicated application that can be installed on the user terminal (smartphone, etc.) to the user terminal, and the support body unit (110) discussed above can be provided with a radar sensor module and a wired / wireless network communication module (e.g., Bluetooth sensor, etc.).

[0099] A dedicated application installed on a user terminal captures the user's snoring breathing sounds through a microphone while the user is sleeping. The control unit (140) uses a deep learning inference engine to derive snoring pattern inference values ​​from the snoring breathing sounds through the user terminal. In addition, the control unit (140) receives the snoring pattern inference values ​​through a wired or wireless network communication module.

[0100] Meanwhile, the radar sensor module provided in the support body (110) can measure sleep data (e.g., sleep start time, sleep wake-up time, number of times the user tosses and turns during sleep, user heart rate during sleep, respiratory rate during sleep, etc.) while the user is sleeping, and transmits this to the user terminal via a wired / wireless network communication module (e.g., Bluetooth sensor). At this time, the transmitted sleep data is transmitted to a dedicated application of the user terminal according to a predetermined data format and protocol.

[0101] Meanwhile, the processor (MCU) of the board on which the radar sensor module is mounted and the stepping motor driver can be connected via UART serial communication, and the control unit (140) transmits the snoring pattern inference value previously received via the wired / wireless network communication module to the stepping motor driver via UART serial communication. The stepping motor driver appropriately adjusts the rotation speed, rotation direction, and rotation number of the stepping motor (135) according to the received snoring pattern inference value, thereby allowing the user's head to naturally turn to the left or right, thereby preventing snoring and sleep apnea.

[0102]

[0103] Although the present invention has been described above with reference to preferred embodiments thereof, it will be understood by those skilled in the art that various modifications and changes may be made to the present invention without departing from the spirit and scope of the present invention as set forth in the claims below.

[0104]

[0105] *Explanation of symbols

[0106] 100: Smart AI Swing Pillow to Prevent Snoring

[0107] 110: Support body

[0108] 111: Curved bone

[0109] 112: Binding slit

[0110] 113: Reception Home

[0111] 114: Worm shaft support

[0112] 114a: Bearing

[0113] 115: Stepping motor fixing bracket

[0114] 120: Head support

[0115] 121: Curved bone

[0116] 122: Means of Bonding

[0117] 130: Drive unit

[0118] 131: Rotation axis module

[0119] 131a: Bearing

[0120] 132: Worm gear

[0121] 132a: Bolt fastening groove

[0122] 133: Worm roller

[0123] 134: Worm shaft

[0124] 135: Stepping motor

[0125] 140: Control Unit

Claims

1. Support body part (110) that is fixed on the floor surface; A head support member (120) for turning the user's head left and right by sliding left and right while the user's head is seated on the upper side of the support body member (110); and It is characterized by including a driving unit (130) provided between the support body (110) and the head support unit (120) and used to slide the head support unit (120) using motor power. Smart artificial intelligence swing pillow to prevent snoring.

2. In paragraph 1, The above support body part (110) is The height of the left and right ends is formed relatively high and the height of the center is formed relatively low to form a curved valley (111), and the head support part (120) is characterized in that it slides left and right along the curved valley (111). Smart artificial intelligence swing pillow to prevent snoring.

3. In paragraph 2, The upper part of the above head support (120) is formed with relatively high heights at the left and right ends and relatively low heights at the center to form a curved groove (121) to support the user's head. The lower part of the above head support member (120) is characterized by being formed in a curved shape corresponding to the curved groove (111). Smart artificial intelligence swing pillow to prevent snoring.

4. In paragraph 3, On the lower side of the above head support (120), It is characterized in that a binding means (122) is provided that is bound to a binding slit (112) provided on the above-mentioned curved bone (111) and moves in the left and right direction while being bound to the binding slit (112) when the head support member (120) slides. Smart artificial intelligence swing pillow to prevent snoring.

5. In paragraph 2, The above driving unit (130) is A rotary shaft module (131) that is inserted into a receiving groove (113) provided on the above-mentioned curved groove (111) and rotates with the width direction of the support body part (110) as the rotation axis; A worm gear (132) provided on the above rotational axis module (131) and rotated together when the above rotational axis module (131) rotates; A worm roller (133) provided on the above rotational axis module (131) and in contact with the lower surface of the head support (120) rotates together with the rotation of the rotational axis module (131) to provide frictional force so that the head support (120) slides in the left and right directions; A worm shaft (134) that is meshed with and connected to the above worm gear (132); and It is characterized by including a stepping motor (135) which is connected to the worm shaft (134) within the support body (110) and rotates the worm shaft (134) clockwise or counterclockwise using a rotational force, thereby causing the worm roller (133) connected to the worm gear (132) and the rotational shaft module (131) to rotate clockwise or counterclockwise. Smart artificial intelligence swing pillow to prevent snoring.

6. In paragraph 5, At both ends of the above rotation axis module (131), Each bearing (131a) is provided to minimize friction, characterized in that Smart artificial intelligence swing pillow to prevent snoring.

7. In paragraph 5, On one side of the above worm gear (132), A bolt fastening groove (132a) is formed to fasten a bolt to prevent the worm gear (132) from spinning when the worm gear (132) is inserted into the rotary shaft module (131). Smart artificial intelligence swing pillow to prevent snoring.

8. In paragraph 5, The end of the above worm shaft (134) is inserted into the worm shaft support (114) provided in the support body (110), A bearing (114a) is provided on the inside of the worm shaft support (114) to minimize frictional force when the worm shaft (134) rotates. Smart artificial intelligence swing pillow to prevent snoring.

9. In paragraph 5, Within the above support body (110), A stepping motor fixing bracket (115) supporting the stepping motor (135) is provided, characterized in that; Smart artificial intelligence swing pillow to prevent snoring.

10. In paragraph 5, It is characterized by further including a control unit (140) that analyzes the user's snoring sound input through a microphone device provided in the user terminal and controls the rotation speed, rotation direction, and rotation number of the stepping motor (135) based on the snoring pattern inference value according to the analysis result. Smart artificial intelligence swing pillow to prevent snoring.

Citation Information

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