Foldable artificial intelligence glasses device
By separating the power supply and control module from the frame, the problems of uncomfortable wearing of smart glasses and limited battery capacity are solved, and comfort and battery capacity are improved.
Patent Information
- Application Number
- CN202422793910.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Priority Date
- 2024-03-22
- Filing Date
- 2024-11-15
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2034-11-15
AI Technical Summary
The batteries of existing smart glasses are configured on the temples or frames, which makes them uncomfortable to wear and limits the battery capacity.
The power supply and control module is set at a relative position of the frame part and connected to the second end of the temple part to separate it from the frame part. The head is used to bear the weight of the power supply and control module, the temple part is supported by the ear, and the frame part is supported by the nose.
It solves the problem of discomfort when worn for a long time and increases the size and capacity of the battery.
Smart Images

Figure CN223426964U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of a wearable artificial intelligence device, and in particular to a foldable artificial intelligence glasses device. Background Art
[0002] AI-enabled wearable devices include smartwatches, smart glasses, and other wearable devices. Since these wearable devices require electrical power to operate, they are often equipped with batteries. Existing smart glasses have batteries located in the temples or frames, as disclosed in Taiwan Patent M626053 and Taiwan Patent M626675. Placing batteries in the temples or frames increases the weight of the wearer, making prolonged wear more likely to cause discomfort to the ears, nose, or neck. Furthermore, the placement of the batteries in the temples or frames limits their size, and thus their capacity. Utility Model Content
[0003] The technical problem solved by the present invention is that the purpose of the present invention is to provide a foldable artificial intelligence glasses device, which solves the problem of the previous technology that the battery is set on the temple or frame, causing discomfort to the user, and also solves the problem of limited battery capacity.
[0004] The technical means adopted in this utility model are as follows.
[0005] One embodiment of the foldable artificial intelligence eyewear device of the present invention includes a pair of frame members, a pair of lenses, a pair of temple members, a pair of projection modules, a power and control module, and a pair of wires. The frame members are interconnected, each including a frame portion and a receiving portion adjacent to the frame portion. The lenses are disposed in the frame portions of the frame members. Each temple member has a first end and a second end disposed opposite each other, the first end of each temple member being connected to the frame member, and each temple member having a hollow tubular structure. The projection modules are disposed in the receiving portions of the frame members, and the projection modules project images onto the lenses. The power and control module is disposed between the temple members and connected to the second ends of the temple members, such that the power and control module and the frame members are disposed opposite each other. The power and control module includes a control component and a power supply component. Each wire extends from the power and control module through the hollow tubular structure of the temple member to the projection module, electrically connecting the power and control module and the projection module. The power supply component supplies power to the control component and the projection module.
[0006] In another embodiment, each frame portion includes a frame body and a nose pad. The accommodating portion and the nose pad are disposed on opposite sides of the frame body, and the nose pad abuts against a user's nose.
[0007] In another embodiment, the two frame pieces are pivotally connected to each other, and the frame pieces are rotatable to be parallel to each other.
[0008] In another embodiment, each temple piece includes a first connecting segment, a bending segment, and a second connecting segment, the first connecting segment is pivotally connected to the accommodating portion of the frame piece by a first pivot structure, the second connecting segment is pivotally connected to the power supply and control module by a second pivot structure, two ends of the bending segment are pivotally connected to the first connecting segment and the second connecting segment by a third pivot structure and a fourth pivot structure respectively, so that the position of the first connecting segment is higher than the position of the second connecting segment.
[0009] In another embodiment, the axis of the first pivot structure is parallel to the axis of the second pivot structure, and the axis of the third pivot structure is parallel to the axis of the fourth pivot structure.
[0010] In another embodiment, the first connecting segment has a first rod body and a second rod body, the first rod body is combined with the second rod body to form a first length telescopic structure; the first rod body has a first insertion portion, the second rod body has a first sleeving portion, the inner diameter of the first sleeving portion is greater than the outer diameter of the first insertion portion; the outer peripheral surface of the first insertion portion is provided with a plurality of first recesses, the first sleeving portion is provided with a first elastic arm, the end portion of the first elastic arm is provided with a first protrusion, the first protrusion is engaged in the first recess, so that the first rod body and the second rod body are positioned in the appropriate relative position.
[0011] In another embodiment, the second connecting segment has a third rod body and a fourth rod body, the third rod body is combined with the fourth rod body to form a second length telescopic structure; the third rod body has a second insertion portion, the fourth rod body has a second sleeving portion, the inner diameter of the second sleeving portion is greater than the outer diameter of the second insertion portion; the outer peripheral surface of the second insertion portion is provided with a plurality of second recesses, the second sleeving portion is provided with a second elastic arm, the end portion of the second elastic arm is provided with a second protrusion, the second protrusion is engaged in the second recess, so that the third rod body and the fourth rod body are positioned in the appropriate relative position.
[0012] In another embodiment, the third rod body has a fifth pivot structure, the fifth pivot structure is located between the fourth pivot structure and the second insertion portion, the fourth rod body includes a sixth pivot structure, the sixth pivot structure is located between the second pivot structure and the second sleeving portion, the axis of the fifth pivot structure is parallel to the axis of the first pivot structure, and the axis of the sixth pivot structure is parallel to the axis of the third pivot structure.
[0013] In another embodiment, the first pivot structure, the third pivot structure, the fourth pivot structure, the fifth pivot structure and the sixth pivot structure are physical axis pivot structures, the physical axis pivot structure includes an axis core, an axis body and a sleeve portion, the sleeve portion is sleeved on the axis body, and the axis core passes through the axis body and the sleeve portion; the second pivot structure is a virtual axis pivot structure, the virtual axis pivot structure includes a plurality of spring shapes and an axis hole, the springs are axially extended and arranged along a circle to form a virtual axis core, the virtual axis core is inserted into the axis hole and the springs are in contact with the hole wall of the axis hole.
[0014] In another embodiment, the power and control module includes a housing and a plurality of buttons disposed on the housing, the control component and the power component are disposed on the housing, and the buttons are electrically connected to the control component or the power component.
[0015] The technical effects produced by this utility model are:
[0016] The foldable AI glasses device of this invention places the power supply and control module in a position relative to the frame and connected to the second end of the temple. When the foldable AI glasses of this invention are worn on the user's head, the weight of the power supply and control module is borne by the user's head, thus preventing discomfort to the user's ears or nose even during prolonged wear. Furthermore, since the power supply and control module is separated from the frame and temple, the size and capacity of the power supply assembly can be increased without structural limitations. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 It is a three-dimensional diagram of an embodiment of the foldable artificial intelligence glasses device of the present invention.
[0018] Figure 2 yes Figure 1 A three-dimensional image of the foldable artificial intelligence glasses device from another perspective.
[0019] Figure 3 yes Figure 1 A partial exploded perspective view of the foldable artificial intelligence glasses device.
[0020] Figure 4 yes Figure 1 A three-dimensional exploded view of the temple components of the foldable artificial intelligence glasses device.
[0021] Figure 5 yes Figure 4 A three-dimensional exploded view of the temple piece from another perspective.
[0022] Figure 6 yes Figure 1 A top view of the right half of the foldable artificial intelligence glasses device.
[0023] Figure 7 It is a cross-sectional view of the hollow structure of the temple piece of the foldable artificial intelligence glasses device of the present invention.
[0024] Figure 8 It is a three-dimensional diagram of the foldable artificial intelligence glasses device of the utility model after being folded.
[0025] Figure 9 This is a diagram of a user wearing the foldable artificial intelligence glasses device of the present invention.
[0026] Explanation of symbols:
[0027] 1: Foldable artificial intelligence glasses device
[0028] 10: Frame parts
[0029] 11: Frame
[0030] 12: Accommodation
[0031] 13: Frame pivot structure
[0032] 20: Lenses
[0033] 30: temple pieces
[0034] 31: First End
[0035] 32: Second end
[0036] 33: First connection segment
[0037] 34: Bending section
[0038] 35: Second connection segment
[0039] 40: Projection module
[0040] 50: Power supply and control module
[0041] 51: Shell
[0042] 52: Button
[0043] 60: Wire
[0044] 71: First pivot structure
[0045] 72: Second pivot structure
[0046] 73: Third pivot structure
[0047] 74: Fourth pivot structure
[0048] 75: Fifth pivot structure
[0049] 76: Sixth pivot structure
[0050] 111: Frame
[0051] 112: Nose pads
[0052] 131: Rotating base
[0053] 132: Axis
[0054] 331: First rod
[0055] 332: Second rod
[0056] 351: The third rod
[0057] 352: Fourth rod
[0058] 711: shaft core
[0059] 712: Shaft
[0060] 713: Sleeve
[0061] 721: Shrapnel
[0062] 722: shaft hole
[0063] 3311: First insertion part
[0064] 3312: First recess
[0065] 3321: First socket
[0066] 3322: First arm
[0067] 3323: First bump
[0068] 3511: Second insertion part
[0069] 3512: Second recess
[0070] 3521: Second socket
[0071] 3522: Second spring arm
[0072] 3523: Second bump. DETAILED DESCRIPTION
[0073] See also Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 、 Figure 5 and Figure 6 , which represents an embodiment of the foldable artificial intelligence glasses device of the present invention. The foldable artificial intelligence glasses device 1 of this embodiment includes a pair of frame components 10, a pair of lenses 20, a pair of temple components 30, a pair of projection modules 40, a power supply and control module 50, and a pair of wires 60 (such asFigure 7 、 Figure 9
[0074] The frame pieces 10 are connected to each other, and each of the frame pieces 10 includes a frame portion 11 and a housing portion 12 adjacent to the frame portion 11. The frame portion 11 includes a frame body 111 and a nose pad 112, one side of the frame body 111 is connected to the housing portion 12, and the nose pad 112 is disposed on the other side of the frame body 111 and is disposed opposite to the housing portion 12. The nose pad 112 abuts against a user's nose. The lenses 20 are respectively disposed in the frame bodies 111 of the frame portions 11. As shown in Figure 3 , the frame bodies 111 of the frame portions 11 of the two frame pieces 10 are pivotally connected to each other by a frame pivot structure 13, the frame pivot structure 13 includes a rotating base 131 and two shaft bodies 132, the two shaft bodies 132 are disposed through the rotating base 131 and the frame bodies 111, so that the two frame bodies 111 can be rotated relative to the rotating base 131 to be parallel to each other (as shown in Figure 8 ). The frame portions 11 and the housing portions 12 of the present embodiment are integrally formed.
[0075] Each of the temple pieces 30 has a first end 31 and a second end 32 disposed opposite to each other, the first end 31 of the temple piece 30 is connected to the frame piece 10, and the second end 32 of the temple piece 30 is connected to the power and control module 50, so that the power and control module 50 is disposed opposite to the frame piece 10. Each of the temple pieces 30 has a hollow tubular structure (as shown in Figure 7 ).
[0076] The projection modules 40 are respectively disposed in the housing portions 12 of the frame pieces 10, and the projection modules 40 respectively project images to the lenses 20 for a user to view. The power and control module 50 includes a housing 51, a control component, a power component, and a plurality of buttons 52, the control component and the power component are disposed in the housing 51, and the buttons 52 are electrically connected to the control component or the power component. Each of the wires 60 extends from the power and control module 50 to the projection modules 40 through the hollow tubular structure of the temple pieces 30, so that the power and control module 50 is electrically connected to the projection modules 40, and the power component supplies power to the control component and the projection modules 40. The electronic signals of the control component, such as control signals or image data, are transmitted to the projection modules 40 through the wires 60.
[0077] Each temple member 30 includes a first connecting section 33, a bent section 34, and a second connecting section 35. The first connecting section 33 is pivotally connected to the receiving portion 12 of the frame member 10 via a first pivot structure 71. The second connecting section 35 is pivotally connected to the power and control module 50 via a second pivot structure 72. The ends of the bent section 34 are pivotally connected to the first connecting section 33 and the second connecting section 35 via a third pivot structure 73 and a fourth pivot structure 74, respectively. The axis of the first pivot structure 71 is parallel to the axis of the second pivot structure 72, and the axis of the third pivot structure 73 is parallel to the axis of the fourth pivot structure 74. In this embodiment, the axis of the first pivot structure 71 and the axis of the second pivot structure 72 are aligned along the Z-axis, while the axis of the third pivot structure 73 and the axis of the fourth pivot structure 74 are aligned along the X-axis.
[0078] The bent section 34 bends downward from the first connecting section 33 to the second connecting section 35, placing the first connecting section 33 higher than the second connecting section 35. Consequently, the power and control module 50 is positioned lower than the frame 10. When a user wears the foldable artificial intelligence eyewear device 1 of this embodiment, the temples 30 are supported by the ears, the frame 10 is supported by the nose, and the power and control module 50 is supported by the head. Rotation of the second pivot structure 72 allows the power and control module 50 to rest against the head, offsetting some of its weight through friction between the head and the power and control module 50.
[0079] like Figure 8 As shown, by means of the third pivot structure 73 and the fourth pivot structure 74, the bending section 34 can be rotated so that the first connecting section 33, the bending section 34 and the second connecting section 35 are stacked parallel to each other, so that the temple piece 30 is in a folded state. At the same time, the first pivot structure 71 and the frame pivot structure 13 rotate so that the two frame pieces 10 rotate relative to each other to form a parallel state and are folded between the two temple pieces 30.
[0080] like Figure 4 and Figure 5 As shown, the first connecting section 33 comprises a first rod 331 and a second rod 332. The first rod 331 is coupled to the second rod 332 to form a first length-extending structure. The first rod 331 has a first insertion portion 3311, and the second rod 332 has a first sleeve portion 3321. The inner diameter of the first sleeve portion 3321 is larger than the outer diameter of the first insertion portion 3311. The outer circumference of the first insertion portion 3311 is defined by a plurality of first recesses 3312. The first sleeve portion 3321 is provided with a first elastic arm 3322. The end of the first elastic arm 3322 is provided with a first protrusion 3323. The first protrusion 3323 engages with the first recess 3312, positioning the first rod 331 and the second rod 332 in an appropriate relative position. This allows the first connecting section 33 to extend and retract according to the user's head size.
[0081] The second connecting section 35 has a third rod body 351 and a fourth rod body 352, the third rod body 351 is combined with the fourth rod body 352 to form a second length telescopic structure. The third rod body 351 has a second insertion portion 3511, the fourth rod body 352 has a second sleeve portion 3521, the inner diameter of the second sleeve portion 3521 is larger than the outer diameter of the second insertion portion 3511. The outer circumferential surface of the second insertion portion 3511 is provided with a plurality of second recesses 3512, the second sleeve portion 3521 is provided with a second elastic arm 3522, the end of the second elastic arm 3522 is provided with a second protrusion 3523, the second protrusion 3523 is clamped in the second recess 3512, so that the third rod body 351 and the fourth rod body 352 are positioned in the appropriate relative position. In this way, the second connecting section 35 can be telescoped according to the head size of the user.
[0082] The third rod body 351 has a fifth pivot structure 75, the fifth pivot structure 75 is located between the fourth pivot structure 74 and the second insertion portion 3511, the fourth rod body 352 includes a sixth pivot structure 76, the sixth pivot structure 76 is located between the second pivot structure 72 and the second sleeve portion 3521, the axis of the fifth pivot structure 75 is parallel to the axis of the first pivot structure 71, which is the Z-axis direction. The axis of the sixth pivot structure 76 is parallel to the axis of the third pivot structure 73, which is the X-axis direction. The fifth pivot structure 75 and the second pivot structure 72 have similar effects, which make the temple piece 30 bend and more closely fit the user's head. The sixth pivot structure 76 is used to move the power supply and control module 50 close to the temple piece 30 for folding (as shown in Figure 8
[0083] The first pivot structure 71, the third pivot structure 73, the fourth pivot structure 74, the fifth pivot structure 75 and the sixth pivot structure 76 are solid shaft core pivot structures, the solid shaft core pivot structure includes a shaft core 711, a shaft body portion 712 and a shaft sleeve portion 713, the shaft sleeve portion 713 is sleeved on the shaft body portion 712, the shaft core 711 passes through the shaft body portion 712 and the shaft sleeve portion 713 to form a pivot. The second pivot structure 72 is a virtual shaft core pivot structure, the virtual shaft core pivot structure includes a plurality of elastic pieces 721 and a shaft hole 722, the elastic pieces 721 are axially extended and arranged along a circumference to form a virtual shaft core, the virtual shaft core is inserted into the shaft hole 722 and the elastic pieces 721 abut against the hole wall of the shaft hole 722.
[0084] The foldable AI glasses device of this invention places the power supply and control module in a position relative to the frame and connected to the second end of the temple. When the foldable AI glasses of this invention are worn on the user's head, the weight of the power supply and control module is borne by the user's head, thus preventing discomfort to the user's ears or nose even during prolonged wear. Furthermore, since the power supply and control module is separated from the frame and temple, the size and capacity of the power supply assembly can be increased without structural limitations.
Claims
1. A foldable artificial intelligence glasses device, characterized in that: include: A pair of frame members (10) are connected to each other, each frame member (10) comprising a frame portion (11) and a receiving portion (12) adjacent to the frame portion (11); A pair of lenses (20) are respectively arranged on the frame portion (11) of the frame member (10); A pair of temple pieces (30), each of the temple pieces (30) having a first end (31) and a second end (32) arranged opposite to each other, the first end (31) of each temple piece (30) being connected to the frame piece (10), and each of the temple pieces (30) having a hollow tubular structure; A pair of projection modules (40) are respectively disposed on the accommodating portion (12) of the frame member (10), and the projection modules (40) respectively project images onto the lens (20); a power supply and control module (50) disposed between the temple pieces (30) and connected to the second end (32) of the temple piece (30), such that the power supply and control module (50) and the frame piece (10) are disposed relative to each other, the power supply and control module (50) comprising a control component and a power supply component; and a pair of wires (60), each of the wires (60) extending from the power and control module (50) through the hollow tubular structure of the temple piece (30) to the projection module (40), so that the power and control module (50) and the projection module (40) are electrically connected, and the power supply component supplies power to the control component and the projection module (40); Each of the temple pieces (30) includes a first connecting section (33), a bending section (34) and a second connecting section (35); the first connecting section (33) is pivotally connected to the accommodating portion (12) of the frame piece (10) via a first pivoting structure (71); the second connecting section (35) is pivotally connected to the power supply and control module (50) via a second pivoting structure (72); and the two ends of the bending section (34) are pivotally connected to the first connecting section (33) and the second connecting section (35) via a third pivoting structure (73) and a fourth pivoting structure (74), respectively, so that the position of the first connecting section (33) is higher than that of the second connecting section (35).
2. The foldable artificial intelligence glasses device according to claim 1, wherein: Each of the frame parts (11) comprises a frame body (111) and a nose pad (112). The accommodating portion (12) and the nose pad (112) are arranged on opposite sides of the frame body (111), and the nose pad (112) abuts against a user's nose.
3. The foldable artificial intelligence glasses device according to claim 2, wherein: The two frame parts (10) are pivotally connected to each other, and the frame parts (10) can be rotated to be parallel to each other.
4. The foldable artificial intelligence glasses device according to claim 1, wherein: The axis of the first pivoting structure (71) is parallel to the axis of the second pivoting structure (72), and the axis of the third pivoting structure (73) is parallel to the axis of the fourth pivoting structure (74).
5. The foldable artificial intelligence glasses device according to claim 1, wherein: The first connecting section (33) comprises a first rod (331) and a second rod (332), wherein the first rod (331) is combined with the second rod (332) to form a first length telescopic structure; the first rod (331) comprises a first insertion portion (3311), and the second rod (332) comprises a first sleeve portion (3321), wherein the inner diameter of the first sleeve portion (3321) is larger than the outer diameter of the first insertion portion (3311); a plurality of first recesses (3312) are provided on the outer circumference of the first insertion portion (3311), and the first sleeve portion (3321) comprises a first elastic arm (3322), wherein the end of the first elastic arm (3322) is provided with a first protrusion (3323), and the first protrusion (3323) is engaged with the first recess (3312), so that the first rod (331) and the second rod (332) are positioned at appropriate relative positions.
6. The foldable artificial intelligence glasses device according to claim 5, wherein: The second connecting section (35) comprises a third rod (351) and a fourth rod (352), wherein the third rod (351) is combined with the fourth rod (352) to form a second length telescopic structure; the third rod (351) comprises a second insertion portion (3511), and the fourth rod (352) comprises a second sleeve portion (3521), wherein the inner diameter of the second sleeve portion (3521) is larger than the outer diameter of the second insertion portion (3511); a plurality of second recesses (3512) are provided on the outer circumference of the second insertion portion (3511), and the second sleeve portion (3521) is provided with a second elastic arm (3522), wherein the end of the second elastic arm (3522) is provided with a second protrusion (3523), and the second protrusion (3523) is engaged with the second recess (3512), so that the third rod (351) and the fourth rod (352) are positioned at appropriate relative positions.
7. The foldable artificial intelligence glasses device according to claim 6, wherein: The third rod (351) has a fifth pivot structure (75), which is located between the fourth pivot structure (74) and the second insertion portion (3511). The fourth rod (352) includes a sixth pivot structure (76), which is located between the second pivot structure (72) and the second sleeve portion (3521). The axis of the fifth pivot structure (75) is parallel to the axis of the first pivot structure (71), and the axis of the sixth pivot structure (76) is parallel to the axis of the third pivot structure (73).
8. The foldable artificial intelligence glasses device according to claim 7, wherein: The first pivot structure (71), the third pivot structure (73), the fourth pivot structure (74), the fifth pivot structure (75) and the sixth pivot structure (76) are physical axis pivot structures, and the physical axis pivot structure includes an axis (711), an axis body (712) and a sleeve (713), wherein the sleeve (713) is sleeved on the axis body (712), and the axis (711) passes through the axis body (712) and the sleeve (713); the second pivot structure (72) is a virtual axis pivot structure, and the virtual axis pivot structure includes a plurality of spring pieces (721) and an axis hole (722), wherein the spring pieces (721) extend axially and are arranged along a circumference to form a virtual axis, and the virtual axis is inserted into the axis hole (722) and the spring pieces (721) abut against the hole wall of the axis hole (722).
9. A foldable artificial intelligence glasses device, characterized in that: include: A pair of frame members (10) are connected to each other, each frame member (10) comprising a frame portion (11) and a receiving portion (12) adjacent to the frame portion (11); A pair of lenses (20) are respectively arranged on the frame portion (11) of the frame member (10); A pair of temple pieces (30), each of the temple pieces (30) having a first end (31) and a second end (32) arranged opposite to each other, the first end (31) of each temple piece (30) being connected to the frame piece (10), and each of the temple pieces (30) having a hollow tubular structure; A pair of projection modules (40) are respectively disposed on the accommodating portion (12) of the frame member (10), and the projection modules (40) respectively project images onto the lens (20); a power supply and control module (50) disposed between the temple pieces (30) and connected to the second end (32) of the temple piece (30), such that the power supply and control module (50) and the frame piece (10) are disposed relative to each other, the power supply and control module (50) comprising a control component and a power supply component; and a pair of wires (60), each of the wires (60) extending from the power and control module (50) through the hollow tubular structure of the temple piece (30) to the projection module (40), so that the power and control module (50) and the projection module (40) are electrically connected, and the power supply component supplies power to the control component and the projection module (40); The power supply and control module (50) includes a housing (51) and a plurality of buttons (52) arranged on the housing (51), the control component and the power supply component are arranged on the housing (51), and the button (52) is electrically connected to the control component or the power supply component.