Glasses and glasses system
By regulating melatonin secretion through an internal light-emitting module, the glasses address sleep problems caused by insomnia. The design of the temples and charging base enhances portability and functionality, achieving improved sleep quality and convenient charging.
Patent Information
- Application Number
- CN202511639224.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2021-04-30
- Publication Date
- 2026-01-16
AI Technical Summary
Insomnia leads to a deterioration of physical and mental health, and current technologies struggle to effectively regulate melatonin secretion to improve sleep quality.
Design a pair of glasses with a light-emitting module inside the frame that stimulates the retina by emitting light of a specific wavelength to regulate melatonin secretion. The module includes blue, green, and red LEDs. A controller emits light in a predetermined sequence. The temples are foldable and secured with magnetic components. A charging base is used for charging and data transmission.
By regulating melatonin secretion through light stimulation, it improves sleep quality. The temple design increases portability and stability, while the charging base enables convenient charging and data transfer, meeting user needs.
Smart Images

Figure CN121348596A_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of eyewear technology, and in particular to an eyeglass and eyewear system. Background Technology
[0002] People often suffer from insomnia due to physiological or psychological factors. Insomnia can further lead to a deterioration of people's physical and mental state. Therefore, it is essential to maintain good sleep quality in order to ensure a good state of mind.
[0003] Research has found that light-emitting devices generate light of different wavelengths and intensities, stimulating the retina through visual signals. This light acts on the photoreceptors in non-cone and non-rod cells, regulating pineal gland function via non-sensory pathways of the optic nerve. This triggers the pineal gland to rhythmically secrete melatonin, which is present during the daytime (quiet state) and increases at night. Melatonin acts on areas such as the suprachiasmatic nucleus, inducing sleep. Therefore, light-emitting devices can be used to regulate melatonin secretion, thereby modulating sleepiness. Summary of the Invention
[0004] This application provides eyeglasses and an eyeglass system that can improve a user's sleep quality.
[0005] The eyeglasses provided in the first aspect of this application include: The eyeglass frame has a first surface and a second surface arranged opposite to each other, and a light-emitting side surface disposed between the first surface and the second surface. The first surface and the second surface are parallel, the width of the first surface is greater than the width of the second surface, and the second surface is close to the user's face. A light-emitting module is disposed inside the eyeglass frame, and the light beam emitted by the light-emitting module shines on the user's eyes through the light-emitting side surface. Temples, which are located at the ends of the frame.
[0006] The eyeglasses system provided in the second aspect of this application includes: The glasses described in the first aspect above, and the charging dock; The charging dock has a receiving slot and a charging component. The receiving slot is used to hold the glasses, and the charging component is used to charge the glasses placed in the receiving slot.
[0007] The beneficial effects of this application are at least as follows: the glasses and glasses system provided by this application emit a light beam through a light-emitting module set inside the frame, and the light beam shines on the human eye through the light-emitting side, which can improve the user's sleep. Attached Figure Description
[0008] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0009] Figure 1 This is a structural diagram of eyeglasses; Figure 2 yes Figure 1 A schematic diagram of the structure of the glasses from another perspective; Figure 3 yes Figure 1 A structural diagram of the glasses from another perspective; Figure 4 yes Figure 1 A structural breakdown diagram of the glasses; Figure 5 yes Figure 1 A schematic diagram of the charging port on the eyeglass frame; Figure 6 yes Figure 1 A schematic diagram of the nose pad structure in a Chinese-made nose pad; Figure 7 yes Figure 1 A cross-sectional view of the nose bridge; Figure 8 yes Figure 1 A schematic diagram showing the relationship between the charging port and the nose pad; Figure 9 yes Figure 1 A schematic diagram showing the arrangement of the magnetic components in the glasses; Figure 10 yes Figure 1 A diagram showing the glasses in a folded state; Figure 11 yes Figure 1 A structural diagram of the frame in eyeglasses; Figure 12 yes Figure 1 Another structural diagram of the frame in eyeglasses; Figure 13 This is a schematic diagram of the charging base for the glasses system. Detailed Implementation
[0010] The technical solutions of the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this application, and not all of the embodiments. Based on the embodiments of this application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of this application.
[0011] The terms "first," "second," and "third" in this application are for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of technical features indicated. Therefore, a feature defined as "first," "second," or "third" may explicitly or implicitly include at least one of that feature. In the description of this application, "multiple" means at least two, such as two, three, etc., unless otherwise explicitly specified. All directional indications (such as up, down, left, right, front, back, etc.) in the embodiments of this application are only used to explain the relative positional relationships and movements between components in a specific orientation (as shown in the figures). If the specific orientation changes, the directional indications also change accordingly. Furthermore, the terms "comprising" and "having," and any variations thereof, are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units not listed, or may optionally include other steps or units inherent to these processes, methods, products, or devices.
[0012] This application provides a pair of glasses 10. In some embodiments, the glasses 10 may be sleep glasses with light-emitting function, which can regulate human sleep and improve human sleep quality through its light-emitting function.
[0013] Please see Figures 1-3 , Figure 1 This is a structural diagram of the glasses 10. Figure 2 yes Figure 1 A schematic diagram of the structure of the glasses 10 from another perspective. Figure 3 yes Figure 1 A schematic diagram of the structure of the glasses 10 from another perspective.
[0014] Specifically, the glasses 10 includes a frame 11, temples 12 and nose pads 13, with the temples 12 respectively located at the two ends of the frame 11.
[0015] The eyeglass frame 11 has a first surface M1 and a second surface M2 arranged opposite to each other, and a light-emitting side surface M3 disposed between the first surface M1 and the second surface M2. A light-emitting module is disposed inside the eyeglass frame 11, and the light beam emitted by the light-emitting module shines on the user's eyes through the light-emitting side surface M3.
[0016] It should be understood that the luminous side M3 is a transparent side. The luminous module emits a light beam at a preset frequency. The light beam passes through the luminous side M3 and shines on the user's eyes, thereby regulating the synthesis of melatonin and improving the user's sleep quality.
[0017] In some specific embodiments, the first surface M1 is parallel to the second surface M2, the width of the first surface M1 is greater than the width of the second surface M2, one side of the first surface M1 is connected to one side of the second surface M2 through the light-emitting side surface M3, and the included angle between the light-emitting side surface M3 and the first surface M1 is less than 90°.
[0018] It should be understood that the angle between the luminous side M3 and the first surface M1 is less than 90°. At this time, the luminous side M3 and the first surface M1 are not perpendicular. The luminous side M3 will face the eyes and the position slightly below the eyes, so as to achieve full illumination of the user's eyes and obtain better lighting effect, thereby improving the effect on improving the user's sleep quality.
[0019] In some specific embodiments, the light-emitting module includes multiple LEDs, each capable of emitting a light beam and forming a light-emitting surface, which can be parallel to the light-emitting side surface M3. By setting the light-emitting surface of the LEDs to be parallel to the light-emitting side surface M3, the reflection of the LED light beam at the light-emitting side surface M3 can be reduced, increasing the beam emissivity and thus improving the effect on improving the user's sleep quality.
[0020] Specifically, LED lights can include blue LEDs and / or green LEDs, and the controller can control multiple LEDs to emit light simultaneously or alternately according to a predetermined timing sequence. Of course, LED lights can also include LEDs of other colors, such as red LEDs, which are not exhaustively listed here.
[0021] More specifically, blue LED lights emit wavelengths of 470nm-490nm, and green LED lights emit wavelengths of 490nm-510nm. Using blue or green light of these wavelengths as the primary illumination is harmless to the eyes and can significantly inhibit the production of melatonin in the human body. Blue and green LED lights can better suppress melatonin secretion, thereby increasing cortical excitability and improving cognitive ability. In this way, users can secrete more melatonin during sleep at night to promote sleep. Red LED lights emit wavelengths of 620nm-700nm. The auxiliary light emitted by red LED lights is used to stimulate human nerve cells from a saturated state to an excited state, thereby enhancing the effect of blue or green light and thus strengthening the effect of glasses 10 on improving sleep quality.
[0022] It should be understood that when the glasses 10 of this application are sleep glasses, they are mainly used during the day. During the day, they can inhibit the secretion of melatonin in the user's body, so that the melatonin content in the user's body increases at night, which can help the user fall asleep better and improve sleep quality.
[0023] In some specific embodiments, the second surface M2 of the frame 11 is also provided with a switching assembly, which is used to control the working state of the light-emitting module.
[0024] It should be understood that the switch assembly being located on the second surface M2 may mean that a portion of the switch assembly is located on the second surface M2, while the remaining structure is located inside the frame 11. For example... Figure 3 As shown, part of the switch assembly structure A is disposed on the second surface M2, and this part of the structure A can be the switch button of the switch assembly.
[0025] In some embodiments, the temple 12 may include a first temple 121 and a second temple 122. The first temple 121 is disposed at one end S1 of the frame 11, and the second temple 122 is disposed at the other end S2 of the frame 11. The first temple 121 and the second temple 122 may be integrally formed with the frame 11 to ensure structural stability, or they may be detachably connected to the frame 11 to ensure structural flexibility. The structure and material of the first temple 121 may be the same as those of the second temple 122 to ensure structural symmetry and ease of processing.
[0026] Based on the above, the glasses 10 can be a magnetic type, in which the temples 12 are held in the folded state by magnetic attraction.
[0027] Please continue reading. Figure 2 In some embodiments, the first temple 121 includes a first elastic portion P1 and a first main body portion P2. One end of the first elastic portion P1 is connected to the first end S1 of the frame 11, and the first main body portion P2 is provided with a first magnetic element. The second temple 122 includes a second elastic portion P3 and a second main body portion P4. One end of the second elastic portion P3 is connected to the second end S2 of the frame 11, and the second main body portion P4 is provided with a second magnetic element.
[0028] The first elastic part P1 and the first main body part P2 can be integrally formed to ensure structural stability, or they can be detachably connected to ensure structural flexibility. Correspondingly, the second elastic part P3 and the second main body part P4 can be integrally formed or detachably connected.
[0029] When the glasses are in a folded state, the first magnetic component and the second magnetic component attract each other, thereby achieving mutual fixation between the first temple 121 and the second temple 122.
[0030] In some other embodiments, the first main body P2 is further provided with a third magnetic element, and the second main body P4 is further provided with a fourth magnetic element.
[0031] Please continue reading. Figures 1-3 as well as Figure 9 as well as Figure 10 , Figure 9 This is a schematic diagram showing the arrangement of the magnetic components in the glasses 10. Figure 10 yes Figure 1 A schematic diagram of the glasses 10 in a folded state.
[0032] More specifically, the first magnetic element 1211 and the third magnetic element 1212 are spaced apart on the first main body P2, and the second magnetic element 1221 and the fourth magnetic element 1222 are spaced apart on the second main body P4. When the glasses 10 is in the folded state, the first magnetic element 1211 and the fourth magnetic element 1222 are attracted to each other, and the third magnetic element 1212 and the second magnetic element 1221 are attracted to each other.
[0033] Therefore, when the glasses 10 is in a folded state, the two magnetic components of the first temple 121 and the two magnetic components of the second temple 122 are attracted to each other in a one-to-one manner, thereby achieving a good fixing effect between the first temple 121 and the second temple 122.
[0034] It is worth noting that the number of magnetic elements spaced apart on the first temple 121 and the second temple 122 may not be two, but the number of magnetic elements on the first temple 121 and the second temple 122 shall be equal, so that the magnetic elements on the first temple 121 and the second temple 122 attract each other one by one.
[0035] For example, both the first temple 121 and the second temple 122 are provided with three magnetic components. The three magnetic components of the first temple 121 and the three magnetic components of the second temple 122 are attracted to each other one by one to achieve a good adsorption effect.
[0036] In some specific embodiments, the first main body portion P2 of the first temple 121 is provided with at least a first receiving groove and a second receiving groove, a first magnetic member 1211 is disposed in the first receiving groove, and a third magnetic member 1212 is disposed in the second receiving groove. The second main body portion P4 of the second temple 122 is provided with at least a third receiving groove and a fourth receiving groove, a second magnetic member 1221 is disposed in the third receiving groove, and a fourth magnetic member 1222 is disposed in the fourth receiving groove. The openings of the first and second receiving grooves can be disposed on the side of the first temple 121, and the openings of the third and fourth receiving grooves can be disposed on the side of the second temple 122. The side of the first temple 121 and the second temple 122 can be the side close to the nose pad 13. By disposing of the openings on the side of the first temple 121 or the second temple 122, the influence of the openings on the part of the temple 12 that is positioned on the human ear can be reduced.
[0037] The first temple 121 may also be provided with a first cover plate and a second cover plate, which are used to cover the openings of the first receiving groove and the second receiving groove respectively. The second temple 122 may also be provided with a third cover plate and a fourth cover plate, which are used to cover the openings of the third receiving groove and the fourth receiving groove respectively.
[0038] In some specific embodiments, the first magnetic element 1211, the third magnetic element 1212, the second magnetic element 1221, and the fourth magnetic element 1222 are all identical in shape and material. The first magnetic element 1211, the third magnetic element 1212, the second magnetic element 1221, and the fourth magnetic element 1222 can all be strip-shaped magnetic elements, for example, all cuboids, and the length extension direction of the strip-shaped magnetic element is the same as the length extension direction of the first temple 121 or the second temple 122. By setting the magnetic elements to strip-shaped magnetic elements, the adsorption effect between the magnetic elements can be enhanced, thereby strengthening the fixing effect between the first temple 121 and the second temple 122.
[0039] like Figure 9 as well as Figure 10 As shown, in some specific embodiments, the third magnetic element 1212 is disposed at the end of the first main body portion P2 of the first temple 121 away from the first elastic portion P1, and the fourth magnetic element 1222 is disposed at the end of the second main body portion P4 away from the second elastic portion P3.
[0040] Based on the above, it can be seen that the third magnetic element 1212, located on the first main body P2 away from the first elastic part P1, attracts the second magnetic element 1221, thereby achieving relative fixation of the second end of the first temple 121. Similarly, the fourth magnetic element 1222, located on the second main body P4 away from the second elastic part P3, attracts the first magnetic element 1211, thereby achieving relative fixation of the second end of the second temple 122. Therefore, by placing the third magnetic element 1212 at the second end of the first temple 121 and placing the second end of the fourth magnetic element 1222 at the second end of the second temple 122, a good fixing effect can be achieved for the ends of both the first temple 121 and the second temple 122.
[0041] In some specific embodiments, the first elastic part P1 and the second elastic part P3 are both arc-shaped, and the inner sides of the arc of the first elastic part P1 and the second elastic part P3 are close to the frame 11, that is, the inner sides of the arc of the first elastic part P1 and the second elastic part P3 are close to the nose pad 13.
[0042] Specifically, the thickness of the first elastic part P1 is less than the thickness of the first main body part P2, and the thickness of the second elastic part P3 is less than the thickness of the second main body part P4.
[0043] Taking the first temple 121 as an example, such as Figure 2The thickness d1 of the first elastic part P1 is less than the thickness d2 of the first main body part P2, and the same applies to the second temple 122. Specifically, the thickness of the first elastic part P1 is uniform throughout, except at the end connected to the first main body part P2, and the same applies to the second elastic part P3; the thickness of the first main body part P2 is uniform throughout, except at both ends, and the same applies to the second main body part P4. The thickness of the first elastic part P1 at the end connected to the first main body part P2 gradually increases along the direction of the first main body part P2, and the same applies to the second elastic part P3; the thickness of the two ends of the first main body part P2 gradually decreases towards the ends, and the same applies to the second main body part P4.
[0044] Specifically, both the first elastic part P1 and the second elastic part P3 are formed of elastic material, so that both the first elastic part P1 and the second elastic part P3 can undergo elastic deformation.
[0045] By making both the first elastic portion P1 and the second elastic portion P3 curved, good elasticity of the first elastic portion P1 and the second elastic portion P3 can be ensured. Furthermore, in the initial state, the curved shape of the first elastic portion P1 and the second elastic portion P3 allows the temples 12 of the glasses 10 to adapt well to different head sizes. For example, when the user's head is large, the first elastic portion P1 and the second elastic portion P3 undergo larger deformation, and when the head is small, they undergo smaller deformation, thus achieving adaptation to different head sizes.
[0046] The thickness of the first elastic part P1 is less than the thickness of the first main body part P2, and the thickness of the second elastic part P3 is less than the thickness of the second main body part P4. This arrangement ensures both the portability of the glasses 10 and the good elasticity of the first elastic part P1 and the second elastic part P3.
[0047] Please see Figure 3 In some specific embodiments, the eyeglass frame 11 includes a first connecting portion 112, which is disposed at a first end S1 of the eyeglass frame 11. A first temple 121 is connected to the first connecting portion 112, and the first connecting portion 112 is provided with a first elastic cavity T1. A second connecting portion 113 is disposed at a second end S2 of the eyeglass frame 11, and a second temple 122 is connected to the second connecting portion 113. The second connecting portion 113 is provided with a second elastic cavity T2.
[0048] Specifically, the first elastic cavity T1 and the second elastic cavity T2 are respectively located in the receiving spaces of the first connecting portion 112 and the second connecting portion 113 of the eyeglass frame 11, with the first elastic cavity T1 located in the main body of the first connecting portion 112 and the second elastic cavity T2 located in the main body of the second connecting portion 113. Both the first elastic cavity T1 and the second elastic cavity T2 are provided with openings located on the second side M2 of the eyeglass frame 11. The eyeglass frame 11 is also provided with elastic cavity cover plates, which cover the first elastic cavity T1 and the second elastic cavity T2 respectively.
[0049] Of course, in some embodiments, the first elastic cavity T1 and the second elastic cavity T2 can respectively penetrate the first side M1 and the second side M2 of the frame 11, that is, the first elastic cavity T1 and the second elastic cavity T2 are respectively through holes provided in the first connecting part 112 and the second connecting part 113.
[0050] It is understandable that by setting the first elastic cavity T1 and the second elastic cavity T2, on the one hand, the elasticity of the first connecting part 112 and the second connecting part 113 can be increased, on the other hand, the material of the glasses 10 can be reduced, thus reducing the cost, and on the other hand, items can be stored in the first elastic cavity T1 and the second elastic cavity T2, thus increasing the function of the glasses 10.
[0051] In some specific embodiments, the first connecting portion 112 is arc-shaped, with the inner arc of the first connecting portion 112 close to the second end S2 of the frame 11, i.e., close to the nose pad 13. The thickness of the first connecting portion 112 gradually decreases from the end away from the first main body P2 to the other end of the first connecting portion 112 (i.e., the end connected to the first connecting portion 112). The end of the first connecting portion 112 away from the first main body P2 has the same thickness as the middle portion of the frame 11.
[0052] The second connecting portion 113 is arc-shaped, with its inner arc side close to the first end of the frame 11, i.e., close to the nose pad 13. The thickness of the second connecting portion 113 gradually decreases from the end away from the second main body P4 to the other end. The end of the second connecting portion 113 away from the second main body P4 has the same thickness as the middle portion of the frame 11.
[0053] Understandably, the gradual reduction in thickness of the first connecting portion 112 and the second connecting portion 113 ensures a smooth transition between the frame 11 and the first elastic portion P1 and the second elastic portion P3, resulting in a smoother structure for the glasses 10. Furthermore, this design allows the ends of the first connecting portion 112 and the second connecting portion 113 furthest from the frame 11 to possess a certain degree of elasticity, enhancing the overall elasticity of the temples 12.
[0054] The eyeglasses 10 can be a type of eyeglasses 10 with detachable nose pads. See also... Figure 4 , Figure 4 yes Figure 1 A structural breakdown diagram of the glasses 10.
[0055] In some embodiments, the frame 11 is provided with a charging interface 111, and the first end D1 of the nose pad 13 is provided with a plug-in component A, which is pluggably connected to the charging interface 111. The charging interface 111 is located on the second surface M2 of the frame 11, that is, the nose pad 13 is also located on the second surface M2 of the frame 11. The internal components of the glasses 10, such as the light-emitting module, can be charged through the charging interface 111.
[0056] The charging port 111 serves two purposes: charging and connectivity. For example, when the glasses 10 need to be charged, the nose pad 13 can be removed from the charging port 111 to charge the glasses using an external charging device connected to the charging port 111. When the glasses 10 do not need to be charged, the nose pad 13 can be inserted into the charging port 111 to install the nose pad 13.
[0057] The charging interface in this embodiment can be a commercially available charging interface, such as a Micro USB interface, a USB Type C interface, or a Lightning interface.
[0058] Since the charging interface 111 of the glasses 10 of this application can realize the function of charging on the one hand and the function of installing nose pad 13 on the other hand, there is no need to set up an additional mounting structure for installing nose pad 13, thereby simplifying the structure of glasses 10.
[0059] It should be understood that when the glasses 10 are worn on the user's face, the first temple 121 and the second temple 122 are fixed to the user's left ear and right ear respectively, and the nose pad 13 is fixed to the user's nose. Thus, the frame 11 is fixed relative to the user through the temple 12 and the nose pad 13.
[0060] Please see Figure 5 , Figure 5 yes Figure 1 A schematic diagram of the charging port 111 on the frame 11.
[0061] In one specific embodiment, a third protrusion 112 is provided on the second side M2 of the eyeglass frame 11, that is, the third protrusion 112 protrudes relative to the first side M1, and the charging port 111 is disposed on the third protrusion 112. The distance between the third protrusion 112 and one opposite end S1 of the eyeglass frame 11 is equal to the distance between the third protrusion 112 and the other opposite end S2 of the eyeglass frame 11. Therefore, the third protrusion 112 is disposed in the middle of the eyeglass frame 11, that is, the charging port 111 and the nose pad 13 are disposed in the middle of the eyeglass frame 11.
[0062] Specifically, the charging interface 111 includes a first receiving groove 1111 and a first protrusion 1112. The first protrusion 1112 is disposed within the first receiving groove 1111 and has a charging contact Q. The first protrusion 1112 is fixedly disposed in the middle of the first receiving groove 1111 and forms a space between it and the peripheral wall of the first receiving groove 1111. The first protrusion 1112 can be connected to circuit devices such as a circuit board disposed inside the frame 11, and the charging contact Q is connected to the connection line of an external charging device to realize the transmission of current.
[0063] Please see Figure 6 , Figure 7 as well as Figure 8 , Figure 6 yes Figure 1 A schematic diagram of the nose pad 13 in the middle. Figure 7 yes Figure 1 A cross-sectional view of the nose bridge 13 in the middle. Figure 8 yes Figure 1 A schematic diagram showing the relationship between the charging port 111 and the nose pad 13.
[0064] Specifically, the insert A includes a second protrusion 131, which is disposed at the first end D1 of the nose pad 13, and the second protrusion 131 is provided with a second receiving groove 132. The first end D1 of the nose pad 13 forms a stepped surface W1, and the second protrusion 131 can be disposed perpendicular to the stepped surface W1.
[0065] When the plug-in component A is disposed on the charging interface 111, the first receiving groove 1111 is used to receive the second protrusion 131, and the second receiving groove 132 is used to receive the first protrusion 1112.
[0066] Specifically, the outer diameter of the first receiving groove 1111 is larger than the outer diameter of the second protrusion 131, so that the first receiving groove 1111 can accommodate the second protrusion 131. The depth of the first receiving groove 1111 is greater than the length of the first protrusion 1112, so that after the nose pad 13 is disposed on the charging interface 111, the end face of the charging interface 111 contacts the stepped surface W1 of the nose pad 13, thereby fixing the relative positions of the nose pad 13 and the charging interface 111. Correspondingly, the length of the first protrusion 1112 can be less than the depth of the second receiving groove 132, so that the first protrusion 1112 can be completely accommodated in the second receiving groove 132.
[0067] It should be noted that when the charging interface 111 is located on the third protrusion 112, the end face of the charging interface 111 is flush with the end face of the third protrusion 112, that is, the upper end face of the first receiving groove 1111 is flush with the upper end face of the third protrusion 112. When the plug-in A is located on the charging interface 111, the stepped surface W1 of the nose pad 13 contacts the end face of the third protrusion 112.
[0068] In some specific embodiments, the charging interface 111 and the plug-in A can be detachably connected by an interference fit.
[0069] More specifically, a detachable connection is achieved between the first receiving groove 1111 and the second protrusion 131 through an interference fit. In this case, the outer diameter of the first receiving groove 1111 can be set slightly larger than the outer diameter of the second protrusion 131 to achieve the interference fit. Correspondingly, a detachable connection is achieved between the first protrusion 1112 and the second receiving groove 132 through an interference fit. In this case, the outer diameter of the second receiving groove 132 can be set slightly larger than the outer diameter of the first protrusion 1112 to achieve the interference fit.
[0070] In other embodiments, the charging interface 111 and the plug-in A may also be detachably connected in other ways.
[0071] For example, the charging interface 111 and the plug-in A can be detachably connected by magnetic attraction. Specifically, the second protrusion 131 can be configured to have a first magnetism, and the interior of the first receiving groove 1111 of the charging interface 111 can be configured to have a second magnetism. The first magnetism and the second magnetism have opposite polarities to achieve mutual attraction.
[0072] In some other embodiments, the charging interface 111 and the plug-in A can be detachably connected by a snap-fit mechanism, which will not be discussed in detail here.
[0073] Please continue reading. Figure 6The second end D2 of the nose pad 13 forms a U-shaped fixing part, which includes a first sub-fixing part 133 and a second sub-fixing part 134. The first sub-fixing part 133 and the second sub-fixing part 134 are spaced apart, and the first sub-fixing part 133 and the second sub-fixing part 134 are set at a preset angle, which can be 60°.
[0074] Specifically, the first sub-fixing part 133 and the second sub-fixing part 134 can be integrally formed to ensure the stability of the nose pad 13 structure. The U-shaped fixing part formed by the two matches the shape of the nose, so that the U-shaped fixing part is fixed to the nose part of the human body, thereby supporting the frame 11.
[0075] Please combine Figure 11 as well as Figure 12 , Figure 11 yes Figure 1 A structural diagram of the frame 11 in the middle of the eyeglasses 10. Figure 12 yes Figure 1 Another structural diagram of the frame 11 in the middle of the glasses 10.
[0076] In some specific embodiments, the frame 11 includes a fifth receiving groove N1 and a light-emitting module 114. The fifth receiving groove N1 extends along the length of the frame 11, that is, it is arranged along the middle of the frame 11 towards the temple 12. The light-emitting module 114 is disposed in the fifth receiving groove N1. The light-emitting module 114 is used to emit light of different wavelengths, such as different wavelengths of blue light or green light, to regulate the secretion of melatonin in the human body, so as to regulate human sleep.
[0077] Specifically, the light-emitting module 114 is fixedly disposed in the fifth receiving slot N1. The light-emitting module 114 includes a circuit board (not shown) and multiple LEDs or LED beads connected to the circuit board. The circuit board supplies power to the LEDs, causing them to emit light. A controller (not shown) is also disposed on the circuit board, which controls the LEDs to emit light according to a predetermined timing sequence.
[0078] More specifically, the light-emitting module 114 is provided with a sixth receiving slot N2, which is arranged along the length of the light-emitting module 114. The sixth receiving slot N2 can communicate with the fifth receiving slot N1, and the sixth receiving slot N2 is used to accommodate the LED light of the light-emitting module 114. It should be understood that the controller of the light-emitting module 114 is disposed in the fifth receiving slot N1, and the LED light of the light-emitting module 114 is disposed in the sixth receiving slot N2 formed by the light-emitting module 114 itself.
[0079] In some specific embodiments, the switching device is electrically connected to the controller and is used to control the switching of the controller. A portion of the switching device can be housed in the fifth receiving slot N1. The frame 11 has a through hole connecting the fifth receiving slot N1 to the external space, and another portion of the switching device passes through this through hole and is exposed on the second surface M2 of the frame 11.
[0080] It should be understood that the switching device of the glasses 10 in this application is located on the frame 11, rather than on the temple 12, which ensures the simplicity of the temple 12 structure and the good elasticity of the temple 12.
[0081] This application also provides an eyeglasses system, which includes the eyeglasses 10 described in the above embodiments and a charging dock 20. Please refer to... Figure 13 , Figure 13 This is a structural schematic diagram of the charging base 20 of the glasses system of this application.
[0082] The charging base 20 is provided with a receiving slot K and a charging component (not shown). The receiving slot K is used to receive the glasses 10, and the charging component is used to charge the glasses 10 received in the receiving slot K. Specifically, the receiving slot K can be used to receive the glasses 10 in a folded state, and the charging component is used to charge the glasses 10 in the folded state.
[0083] Specifically, the charging base 20 includes a base 21 and a cover 22. The base 21 is provided with a receiving groove K and a charging component. The cover 22 covers the base 21 to protect the glasses 10 placed in the receiving groove K.
[0084] Specifically, the receiving groove K includes a first receiving groove K1 and a second receiving groove K2. The first receiving groove K1 is arranged in a ring around the periphery of the base 21 and is used to receive the frame 11 and temple 12 of the glasses 10 in a folded state. The second receiving groove K2 is disposed in the area formed by the first receiving groove K1 around the base 21 and is used to receive the nose pad 13. When the frame 11 of the glasses 10 is received in the first receiving groove K1, the second surface M2 of the frame 11 is close to the bottom of the first receiving groove K1.
[0085] Specifically, the first receiving groove K1 is arranged in a ring shape, and the first receiving groove K1 is spaced apart from the edge of the base 21. The ring-shaped first receiving groove K1 divides the base 21 into a central region and an edge region. The central region is the area formed by the first receiving groove K1 surrounding the base 21, and a second receiving groove K2 is disposed in the central region. The second receiving groove K2 can be disposed in the middle of the central region, and both ends of the second receiving groove K2 can be connected to the first receiving groove K1.
[0086] It should be understood that after the glasses 10 is used up, the nose pads 13 of the glasses 10 can be removed from the frame 11 and placed in the second receiving groove K2, while the frame 11 and temples 12 in the folded state can be placed in the first receiving groove K1.
[0087] Specifically, a first magnetic element 211 can be provided on the base 21, and a second magnetic element 221 can be provided on the cover 22. When the cover 22 is placed on the base 21, the first magnetic element 211 and the second magnetic element 221 attract each other, causing the cover 22 to adhere to the base 21, thereby achieving a detachable connection. Of course, in addition to the first magnetic element 211 and the second magnetic element 221, the base 21 and the cover 22 can also be further fixed by a snap-fit connection. Figure 13 The cover 22 may be provided with two fastening parts 222 on its edge side, and the two fastening parts 222 are spaced apart. The base 21 may be provided with corresponding locking parts. When the cover 22 is closed on the base 21, one fastening part 222 and one locking part are connected to each other to achieve relative fixation between the cover 22 and the base 21.
[0088] The first magnetic element 211 can be a plurality of magnetic elements spaced apart along the edge of the base 21, and the second magnetic element 221 can be a plurality of magnetic elements spaced apart along the edge of the cover 22. When the cover 22 is closed on the base 21, one first magnetic element 211 and one second magnetic element 221 attract each other.
[0089] Specifically, the charging component may include a first charging contact, which is disposed within the receiving groove K. In conjunction with the above, the first charging contact may be disposed within the first receiving groove K1, and the charging interface 111 is provided with a second charging contact. The second charging contact may be the charging contact Q described in the above embodiments, or a different charging contact than the charging contact Q, in which case the second charging contact is disposed on the second surface M2 of the frame 11.
[0090] It should be understood that when the glasses 10 are housed in the receiving slot K, the first charging contact and the second charging contact abut against each other, so that the charging component charges the glasses 10. Therefore, the charging base 20 of this application can not only house the glasses 10, but also charge the housed glasses 10.
[0091] In other embodiments, the charging component may include a first wireless charging component disposed in the receiving slot K, and a second wireless charging component is correspondingly disposed on the frame 11. The charging base 20 charges the glasses 10 through the first wireless charging component and the second wireless charging component.
[0092] Specifically, the first wireless charging component may include a wireless charging transmitting coil, and the second wireless charging component may include a wireless charging receiving coil. When the glasses 10 are placed in the receiving slot K, the wireless charging transmitting coil and the wireless charging receiving coil are aligned and cooperate, and electromagnetic energy is transferred through electromagnetic induction, thereby enabling the charging base 20 to charge the glasses 10.
[0093] It should be understood that the charging component may have both a first charging contact and a first wireless charging component, thereby enabling the glasses 10 to be charged via wired or wireless charging.
[0094] Optionally, the base 21 is provided with a communication component, which includes a first communication contact disposed within the receiving groove K1, and a second communication contact disposed on the second surface of the frame 11. The first communication contact can be disposed on the bottom wall of the first receiving groove K1. When the frame 11 is received in the first receiving groove K1, the first communication contact and the second communication contact contact each other, establishing a communication connection. It should be understood that data can be transmitted between the base 21 and the glasses 10, allowing data from the glasses 10 to be transmitted to or from the base 21 to the glasses 10.
[0095] In some embodiments, the communication component and the glasses 10 can communicate via simplex or fullx communication.
[0096] Specifically, when the communication component and the glasses 10 engage in simplex communication, the number of first communication contacts can be one, and correspondingly, the number of second communication contacts can also be one. In this case, the communication component can send data signals based on the first communication contact, and the glasses 10 can receive data signals based on the second communication contact; alternatively, the communication component can receive data signals based on the first communication contact, and the glasses 10 can send data signals based on the second communication contact.
[0097] When the communication component and the glasses 10 communicate in full-duplex mode, there can be two first communication contacts, one of which is used to receive data signals and the other is used to transmit data signals. Correspondingly, there can also be two second communication contacts, one of which is used to receive data signals and the other is used to transmit data signals. In this case, the communication component and the glasses 10 achieve full-duplex communication.
[0098] In the simplex communication mode, a single-bus interface can be set in the communication component. A single-bus, or one-line bus, can transmit both clock signals and data, and enables bidirectional data transmission, thus achieving simplex communication between the communication component and the glasses 10. Furthermore, the single-bus offers numerous advantages such as simple resource structure, low cost, and ease of bus expansion and maintenance, further enhancing the performance of the glasses system.
[0099] Of course, in some other embodiments, the charging dock 20 is provided with a first wireless communication component, and the glasses 10 is provided with a second wireless communication component. The first wireless communication component and the second wireless communication component communicate wirelessly. For example, they communicate via near-field communication. It should be understood that when communicating wirelessly, neither the first nor the second communication component has communication contacts.
[0100] Specifically, when the glasses 10 are placed in the receiving slot K, the distance between the first wireless communication component and the second wireless communication component is within the threshold range, which can realize wireless communication connection, thereby realizing wireless communication between the glasses 10 and the charging base 20.
[0101] Optionally, the eyeglasses 10 may be equipped with a Hall element, which is connected to a switching device of the eyeglasses 10. The Hall element is used to control the switching of the switching device, thereby controlling the switching of the eyeglasses 10. The Hall element may be disposed in the frame 11 of the eyeglasses 10, near the second surface M2 of the frame 11.
[0102] Specifically, the charging base 20 has a magnetic block, specifically, the base 21 can be positioned on the magnetic block, and the magnetic block can provide a magnetic field to the base 21. When the glasses 10 are housed in the receiving slot K, the Hall element experiences a magnetic induction intensity greater than or equal to a preset intensity, at which point the Hall element controls the switching device to turn off the glasses 10. When the glasses 10 are removed from the receiving slot K, the magnetic induction intensity experienced by the Hall element is less than the preset intensity, and the Hall element controls the switching device to turn on the glasses 10.
[0103] It should be understood that when the user does not need to use the glasses 10 and places the glasses 10 in the receiving slot K, the glasses 10 is close to the magnetic block. The magnetic field strength experienced by the Hall element in the glasses 10 increases and becomes greater than or equal to a preset magnetic field strength, causing the Hall element to control the glasses to close. When the user removes the glasses 10 from the receiving slot K, as the glasses 10 moves away from the magnetic block, the magnetic field strength experienced by the Hall element in the glasses 10 decreases and becomes less than the preset magnetic field strength, causing the Hall element to control the glasses 10 to open.
[0104] Therefore, by using Hall effect sensors and magnetic blocks, the glasses 10 can automatically turn on and off, meeting the actual needs of users and improving the intelligence level of the glasses 10 and the user experience.
[0105] In this document, the term "embodiment" means that a particular feature, structure, or characteristic described in connection with an embodiment may be included in at least one embodiment of this application. The appearance of this phrase in various places throughout the specification does not necessarily refer to the same embodiment, nor is it a separate or alternative embodiment mutually exclusive with other embodiments. It will be explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments without conflict.
[0106] The above description is merely an embodiment of this application and does not limit the patent scope of this application. Any equivalent structural or procedural transformations made using the content of this application's specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this application.
Claims
1. A pair of eyeglasses, characterized in that, The eyeglasses include: The eyeglass frame has a first surface and a second surface arranged opposite to each other, and a light-emitting side surface disposed between the first surface and the second surface. The first surface and the second surface are parallel, the width of the first surface is greater than the width of the second surface, and the second surface is close to the user's face. A light-emitting module is disposed inside the eyeglass frame, and the light beam emitted by the light-emitting module shines on the user's eyes through the light-emitting side surface. Temples, which are disposed at the ends of the frame.
2. The eyeglasses according to claim 1, characterized in that, The angle between the light-emitting side and the first surface is less than 90°.
3. The eyeglasses according to claim 1, characterized in that, The light-emitting module includes multiple LEDs, and the light-emitting surface of each LED is parallel to the light-emitting side surface.
4. The eyeglasses according to claim 1, characterized in that, A switch assembly is also provided on the second surface of the eyeglass frame, which is used to control the working state of the light-emitting module.
5. The eyeglasses according to claim 1, characterized in that, The second surface of the eyeglass frame is provided with a charging interface, which is used to charge the light-emitting module.
6. The eyeglasses according to claim 5, characterized in that, The glasses further include a nose pad, one end of which is provided with a plug-in component, and the nose pad and the frame are pluggably connected via the plug-in component and the charging interface.
7. The eyeglasses according to claim 1, characterized in that, The temples include: The first temple includes a first elastic part and a first main body part. One end of the first elastic part is connected to the first end of the frame. The first main body part is provided with a first magnetic element. The second temple includes a second elastic part and a second main body part. One end of the second elastic part is connected to the second end of the frame. The second main body part is provided with a second magnetic element. When the glasses are in a folded state, the first magnetic component and the second magnetic component are attracted to each other.
8. A glasses system, characterized in that, The eyewear system includes: The eyeglasses as described in any one of claims 1-7, and the charging base; The charging base is provided with a receiving slot and a charging component. The receiving slot is used to receive the glasses, and the charging component is used to charge the glasses received in the receiving slot.
9. The eyeglasses system according to claim 8, characterized in that, The charging component includes a first charging contact, which is disposed within the receiving groove; The second surface of the frame is provided with a charging interface, and the charging interface is provided with a second charging contact. When the glasses are placed in the receiving slot, the first charging contact and the second charging contact abut against each other so that the charging component charges the glasses.
10. The eyeglasses system according to claim 8, characterized in that, The charging component includes a first wireless charging component disposed in the receiving slot, and a second wireless charging component is correspondingly disposed on the frame. The charging base charges the glasses through the first wireless charging component and the second wireless charging component.
11. The eyeglasses system according to claim 8, characterized in that, The charging base is provided with a communication component, the communication component includes a first communication contact, the first communication contact is disposed in the receiving groove, and the second surface of the eyeglass frame is provided with a second communication contact; When the glasses are placed in the receiving slot, the first communication contact abuts against the second communication contact, so that the charging base and the glasses are in communication connection.
12. The eyeglasses system according to claim 8, characterized in that, The charging base is provided with a first wireless communication component, and the eyeglass frame is correspondingly provided with a second wireless communication component. The charging base achieves wireless communication connection with the eyeglasses through the first wireless communication component and the second wireless communication component.