Eye protection table lamp for eye muscle training
By designing an eye protection desk lamp with motor-driven light body rotation and red light bead flickering functions, the problem that existing desk lamps cannot train the eye muscles, and precise training of specific eye muscles is achieved to effectively control the development of myopia.
Patent Information
- Application Number
- CN202520848502.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-30
- Publication Date
- 2025-06-10
- Estimated Expiration
- 2035-04-30
AI Technical Summary
Existing desk lamps generally only have the function of lighting, and cannot train the eye muscles of the human eye to control the development of myopia, or the training methods are single, so precise training of specific eye muscles cannot be achieved.
Design an eye muscle training eye protection desk lamp, including a lamp holder, support rod, motor, lamp body and controller, the motor drives the lamp body to rotate preset angle, and combines the lighting tube and red light beads spaced along the length of the lamp body, and precise training of specific eye muscles is achieved by controlling the flickering of the red light beads and the rotation of the lamp body.
Through precise eye muscle training, it can indirectly affect the regulation force of the lens and ciliary muscles, thereby controlling the development of myopia, providing personalized training plans, and enhancing the training effect.
Smart Images

Figure CN222963842U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of table lamps, and more specifically, to an eye muscle training eye protection table lamp. Background Art
[0002] At present, the occurrence of myopia has become increasingly younger. Students spend more and more time sitting at their desks, and the usage time of electronic products has also gradually increased. Therefore, the incidence of myopia is constantly increasing. Currently, general table lamps only have the function of illumination, and they cannot train the eye muscles of the human eye to control the development of myopia. Or for some table lamps with training functions, their training methods are single and they cannot achieve precise training of specific eye muscles. Summary of the Utility Model
[0003] (I) Technical Problems to be Solved
[0004] The technical problem to be solved by the utility model is that existing table lamps generally only have the function of illumination, and they cannot train the eye muscles of the human eye to control the development of myopia, or their training methods are single and they cannot achieve precise training of specific eye muscles.
[0005] (II) Technical Solutions
[0006] To achieve the above object, the technical solution adopted by the utility model is as follows:
[0007] The utility model provides an eye muscle training eye protection table lamp, which includes a lamp base, a support rod, a motor, a lamp body and a controller; the support rod is connected to the lamp base; the motor is fixedly connected to the support rod; the lamp body is rotatably connected to the motor, and the motor is used to drive the lamp body to rotate a preset angle value to train the eye muscles in the corresponding direction; wherein, the lamp body includes a lighting lamp tube and a plurality of red light beads arranged at intervals along the length direction of the lamp body; the controller is electrically connected to the plurality of red light beads, and the controller is used to control the plurality of red light beads to flash in sequence along the length direction of the lamp body.
[0008] Preferably, the preset angle value is 45°.
[0009] Preferably, all the plurality of red light beads are LED lamp beads capable of emitting red light with a wavelength of 650 nm.
[0010] Preferably, the plurality of red light beads include a first lamp bead and a second lamp bead, the diameter of the first lamp bead is larger than that of the second lamp bead, the first lamp bead is located at the middle position of the lamp body, and a plurality of second lamp beads are spaced apart and distributed on both sides of the first lamp bead.
[0011] Preferably, the diameter of the first lamp bead is 2 cm, and the diameter of the second lamp bead is 2 mm.
[0012] Preferably, the support rod includes a fixed rod and a bent adjustment rod. One end of the fixed rod is fixedly connected to the lamp base, the other end of the fixed rod is fixedly connected to the bent adjustment rod, and the end of the bent adjustment rod away from the fixed rod is connected to the lamp body.
[0013] Preferably, an eye tracker is further included, and the eye tracker is installed on the lamp body.
[0014] Preferably, the distance between the centers of two adjacent red light beads is 2 cm.
[0015] Preferably, a voice reminder device is further included, and the voice reminder device is installed on the lamp base.
[0016] Preferably, a mobile battery is further included, and the mobile battery is arranged in the lamp base.
[0017] Preferably, the lighting tube is a full-spectrum lighting tube.
[0018] (III) Beneficial Effects
[0019] The above technical solutions of the present utility model have at least the following advantages:
[0020] 1. In the present utility model, the lamp body includes a lighting tube and a plurality of red light beads arranged at intervals along the length direction of the lamp body, and the motor is rotatably connected to the lamp body. The lighting tube can provide a lighting function, and the lighting tube is preferably a full-spectrum light tube to achieve the function of eye protection lighting. The motor can drive the lamp body to rotate a preset angle value, and the preset angle value corresponds to the physiological and anatomical structure of the six muscles of the human eye. Through the red light fixation training in the corresponding direction, the strength of the corresponding muscles can be accurately trained, thereby indirectly affecting the adjustment ability of the lens and ciliary muscle, and thus controlling the development of myopia; in addition, a training plan can be customized according to the eye muscle conditions of different users. For example, when the eye muscle strength in the corresponding direction is weak, the training time in the corresponding direction can be increased. 2. In the present utility model, a first lamp bead with a larger diameter is provided on the lamp body. By training for a period of time by looking at the red light with a wavelength of 650 nm emitted by the first lamp bead, the growth of the eye axis can be controlled, and thus the development of myopia can be controlled. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] In order to more clearly illustrate the technical solutions in the embodiments of the present utility model, the following will briefly introduce the drawings required to be used in the embodiments. Obviously, the following drawings are only some embodiments of the present utility model. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0022] Figure 1It is one of the three-dimensional structure diagrams of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0023] Figure 2 It is the second three-dimensional structure diagram of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0024] Figure 3 It is the front view of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0025] Figure 4 It is the first schematic diagram of the working state of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0026] Figure 5 It is the second schematic diagram of the working state of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0027] Figure 6 It is the schematic diagram of the circuit connection structure of the eye muscle training and eye protection table lamp provided by the embodiment of the present utility model.
[0028] Each reference numeral in the figure is as follows:
[0029] 1, lamp base; 2, support rod; 3, motor; 4, lamp body; 5, through-hole conductive slip ring; 21, fixed rod; 22, bent adjustment rod; 41, lighting tube; 42, red light bead; 421, first bead; 422, second bead; 51, rotor; 52, stator; 53, rotor-end wire; 54, stator-end wire. Detailed implementation manners
[0030] In order to make the technical problems, technical solutions and beneficial effects to be solved by the present utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present utility model and are not used to limit the present utility model.
[0031] It should be noted that when an element is referred to as being "fixed to" or "disposed on" another element, it can be directly on the other element or indirectly on the other element. When an element is referred to as being "connected to" another element, it can be directly connected or indirectly connected to the other element.
[0032] It should be understood that the orientation or positional relationship indicated by the terms "length", "width", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present utility model, rather than indicating that the device or element must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model.
[0033] In addition, the terms "first" and "second" are only used for descriptive purposes and should not be construed as indicating relative importance or indicating the quantity of technical features. In the description of the present utility model, the meaning of "a plurality of" is two or more, unless otherwise specifically defined. The following describes the specific implementation of the present utility model in more detail with reference to specific embodiments:
[0034] As shown in Figures 1 to 6 the figure, an eye muscle training eye protection table lamp according to an embodiment of the present utility model includes a lamp base 1, a support rod 2, a motor 3, a lamp body 4, and a controller (not shown); the support rod 2 is connected to the lamp base 1; the motor 3 is fixedly connected to the support rod 2; the lamp body 4 is rotatably connected to the motor 3, and the motor 3 is used to drive the lamp body 4 to rotate by a preset angle value to train the eye muscles in the corresponding direction; wherein, the lamp body 4 includes a lighting tube 41 and a plurality of red light beads 42 arranged at intervals along the length direction of the lamp body; the controller is electrically connected to the plurality of red light beads, and the controller is used to control the plurality of red light beads to flash in sequence along the length direction of the lamp body. Specifically, the lamp base 1 is used to be placed on a placement plane such as a desk. The support rod 2 connects the lamp base 1 and the lamp body 4 to realize the support of the lamp body 4. The lighting tube 41 is used to provide illumination, which can be a cold-color lamp tube or a warm-color lamp tube, and is preferably a full-spectrum lamp tube in this embodiment. The full spectrum is a spectral curve that includes ultraviolet light, visible light, and infrared light in the spectrum. This spectrum is comparable to the visible light part of sunlight and has a complete wavelength band, so as to provide a more comfortable and natural visual environment for people. The full-spectrum lamp tube can provide more uniform and soft light, making the eyes more comfortable, thereby suppressing the growth of the eye axis.
[0035] As an optional implementation manner of this embodiment, the preset angle value is 45°. The preset angle value corresponds to the eye muscle distribution of the human eye's physiological and anatomical structure. By driving the lamp body 4 to rotate by the preset angle through the motor 3, the eye muscles required for movement in the corresponding direction can be trained (including the superior rectus muscle, inferior rectus muscle, lateral rectus muscle, medial rectus muscle, superior oblique muscle, and inferior oblique muscle).
[0036] As an optional implementation manner of this embodiment, the plurality of red light beads 42 are all LED light beads capable of emitting red light with a wavelength of 650 nm. When the human eye receives the irradiation of red light with a wavelength of 650 nm, it can play a role in controlling the growth of the eye axis.
[0037] As an optional implementation manner of this embodiment, the plurality of red light beads 42 include a first light bead 421 and a second light bead 422. The diameter of the first light bead 421 is larger than that of the second light bead 422. The first light bead 421 is located at the middle position of the lamp body 4, and the plurality of second light beads 422 are spaced apart and distributed on both sides of the first light bead 421. Specifically, the diameter of the first light bead 421 is larger to facilitate providing more red light irradiation energy and improving the effect of red light treatment.
[0038] As one of the optional implementations of this embodiment, the diameter of the first lamp bead 421 is 2 cm, and the diameter of the second lamp bead 422 is 2 mm.
[0039] As one of the optional implementations of this embodiment, the support rod 2 includes a fixed rod 21 and a bending adjustment rod 22, one end of the fixed rod 21 is fixedly connected to the lamp holder 1, the other end of the fixed rod 21 is fixedly connected to the bending adjustment rod 22, and the end of the bending adjustment rod 22 away from the fixed rod 21 is connected to the lamp body 4. The bending adjustment rod 22 can be bent in multiple directions, so as to facilitate the adjustment of the illumination angle of the lamp body 4. When the lighting tube 41 is needed to provide lighting, the bending adjustment rod 22 can be bent to make the illumination direction of the lamp body 4 face downward. When eye muscle training is needed, the bending adjustment rod 22 can be bent to make the illumination direction of the lamp body 4 face the direction of the human eye.
[0040] As one of the optional implementations of this embodiment, an eye tracker is further included, and the eye tracker is installed on the lamp body. During the eye muscle training process, the eye tracker can track the movement trajectory of the user's eyeballs, and then determine whether the user participates in the training.
[0041] As one of the optional implementations of this embodiment, the distance between the centers of two adjacent red light beads 42 is 2 cm.
[0042] As one of the optional implementations of this embodiment, a voice reminder device is also included, and the voice reminder device is installed on the lamp holder 1. By embedding a control program for timed reminder in the voice reminder device, it is possible to remind the user to participate in training regularly to avoid excessive eye strain.
[0043] As one of the optional implementations of this embodiment, a mobile battery is further included, which is arranged in the lamp holder. The mobile battery can store part of the electricity, and when the user carries the eye muscle training eye protection desk lamp outside, it can provide electricity for the use of the desk lamp.
[0044] As one of the optional implementations of this embodiment, it also includes a chip, which is electrically connected to the lamp body 4. The chip can record the information of the user's use of the desk lamp (including frequency of use, usage time, etc.) and can provide the information to the corresponding background program. The doctor can evaluate the user's usage results through the information.
[0045] As an alternative implementation of this embodiment, it further includes a through-hole conductive slip ring 5. The through-hole conductive slip ring 5 includes a rotor 51, a stator 52, a rotor-end wire 53, and a stator-end wire 54. The rotor 51 is sleeved on the output shaft of the motor 3 and fixedly connected to the output shaft. The rotor 51 is rotatably connected to the stator 52, and electrical conduction can be achieved between the rotor 51 and the stator 52. One end of the rotor-end wire 53 is electrically connected to the rotor 51, and the other end of the rotor-end wire 53 is electrically connected to the lamp body 4. One end of the stator-end wire 54 is electrically connected to the stator 52, and the other end of the stator-end wire 54 is electrically connected to the controller. During operation, the through-hole conductive slip ring 5 can achieve electrical conduction between the rotor-end wire 53 and the stator-end wire 54, and the rotor 51 can rotate together with the lamp body 4. Through the above technical solution, the problem of wire winding can be solved on the premise of achieving electrical conduction, which is convenient for circuit wiring. Further, the rotor-end wire 53 includes but is not limited to a power supply wire and an electrical signal control wire. The stator-end wire 54 includes but is not limited to a power supply wire and an electrical signal control wire.
[0046] More specifically, please refer to Figure 5 , the specific usage process of this embodiment is as follows:
[0047] When eye muscle training is required, first turn off the lighting tube 41, bend the bending adjustment rod 22 to direct the irradiation direction of the lamp body 4 towards the direction of the human eye, keep the distance between the human eye's eyeball and the red light beads at 40 cm, and then start the red light beads 42.
[0048] ①. In the initial state, the angle between the lamp body 4 and the horizontal plane is 0°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from left to right. The human eye's eyeball moves following the flashing red light beads 42. The rotation of the human eye's eyeball in the left-right direction is mainly achieved by the stretching and contraction of the lateral rectus muscle and the medial rectus muscle. During the movement, stretching training of the lateral rectus muscle and the medial rectus muscle can be achieved. Furthermore, through the solution of this step, the lateral rectus muscle and the medial rectus muscle can be accurately trained.
[0049] ②. After step ① is completed, the motor 3 is started to drive the lamp body 4 to rotate 45°. After the lamp tube rotates 45°, the angle between the lamp body 4 and the horizontal plane is 45°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from the lower left to the upper right. The human eye's eyeball moves following the flashing red light beads 42. The rotation of the human eye's eyeball in the lower left to upper right direction is mainly achieved by the stretching and contraction of the medial rectus muscle and the superior oblique muscle. During the movement, stretching training of the medial rectus muscle and the superior oblique muscle can be achieved. Furthermore, through the solution of this step, the medial rectus muscle and the superior oblique muscle can be accurately trained.
[0050] ③ After step ② is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 90°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from bottom to top. The human eyeball moves following the flashing red light beads 42. The rotation of the human eyeball in the up and down direction is mainly achieved by the contraction and relaxation of the superior rectus muscle and the inferior rectus muscle. During the movement, the stretching training of the superior rectus muscle and the inferior rectus muscle can be realized. Furthermore, through the solution of this step, the superior rectus muscle and the inferior rectus muscle can be accurately trained.
[0051] ④ After step ③ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 135°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from the lower right to the upper left. The human eyeball moves following the flashing red light beads 42. The rotation of the human eyeball in the lower right to upper left direction is mainly achieved by the contraction and relaxation of the lateral rectus muscle and the superior oblique muscle. During the movement, the stretching training of the lateral rectus muscle and the superior oblique muscle can be realized. Furthermore, through the solution of this step, the lateral rectus muscle and the superior oblique muscle can be accurately trained.
[0052] ⑤ After step ④ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 180°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from right to left. The human eyeball moves following the flashing red light beads 42. The rotation of the human eyeball in the left and right direction is mainly achieved by the contraction and relaxation of the lateral rectus muscle and the medial rectus muscle. During the movement, the stretching training of the lateral rectus muscle and the medial rectus muscle can be realized. Furthermore, through the solution of this step, the lateral rectus muscle and the medial rectus muscle can be accurately trained.
[0053] ⑥ After step ⑤ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 225°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 flash in sequence from the upper right to the lower left. The human eyeball moves following the flashing red light beads 42. The rotation of the human eyeball in the upper right to lower left direction is mainly achieved by the contraction and relaxation of the lateral rectus muscle and the inferior oblique muscle. During the movement, the stretching training of the lateral rectus muscle and the inferior oblique muscle can be realized. Furthermore, through the solution of this step, the lateral rectus muscle and the inferior oblique muscle can be accurately trained.
[0054] ⑦ After step ⑥ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 270°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 jump and flash in sequence from top to bottom. The rotation of the human eyeball in the up and down direction is mainly achieved by the contraction and relaxation of the superior rectus muscle and the inferior rectus muscle. During the movement, the stretching training of the superior rectus muscle and the inferior rectus muscle can be realized. Furthermore, through the solution of this step, the superior rectus muscle and the inferior rectus muscle can be accurately trained.
[0055] ⑧ After step ⑦ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, the angle between the lamp body 4 and the horizontal plane is 315°. The user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 jump and flash in sequence from the lower right to the upper left. The rotation of the human eyeball in the lower right to upper left direction is mainly achieved by the contraction and relaxation of the inferior oblique muscle and the medial rectus muscle. During the movement, the stretching training of the inferior oblique muscle and the medial rectus muscle can be realized. Furthermore, through the solution of this step, the inferior oblique muscle and the medial rectus muscle can be accurately trained.
[0056] ⑨ After step ⑧ is completed, the motor 3 starts to drive the lamp body 4 to rotate by 45°. After the lamp tube rotates by 45°, when the angle between the lamp body 4 and the horizontal plane is 360°, the user's eyeball stares at the red light emitted by the red light beads 42. Multiple red light beads 42 jump and flash in sequence from right to left. The rotation of the human eyeball in the left and right direction is mainly achieved by the contraction and relaxation of the lateral rectus muscle and the medial rectus muscle. During the movement, the stretching training of the lateral rectus muscle and the medial rectus muscle can be realized. Furthermore, through the solution of this step, the lateral rectus muscle and the medial rectus muscle can be accurately trained.
[0057] Through the fixation training in the above 9 directions, the strength of 6 muscles (including the superior rectus muscle, the inferior rectus muscle, the lateral rectus muscle, the medial rectus muscle, the superior oblique muscle and the inferior oblique muscle) can be accurately trained, thereby indirectly affecting the accommodation power of the lens and the ciliary muscle, and thus controlling the development of myopia. Through the solution of this step, the lateral rectus muscle and the medial rectus muscle can be accurately trained. Specifically, if it is necessary to increase the training intensity and training effect of the corresponding eye muscle, only the training duration of the corresponding step needs to be increased, and then the accurate training of the corresponding eye muscle can be realized.
[0058] ⑩ After step ⑨ is completed, the lamp body 4 stops moving. At this time, the second lamp bead goes out, and only the first lamp bead remains constantly on. The user's human eye fixes on the red light emitted by the first lamp bead and trains for 3 minutes. The red light training with a wavelength of 650 nm is used to control the growth of the eye axis.
[0059] After step ⑩ is completed, the first lamp bead goes out, then the user closes his eyes for 4 minutes, and finally looks into the distance for 2 minutes after opening his eyes.
[0060] The above are only the preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. An eye muscle training and eye protection desk lamp, characterized in that: include: Lamp holder; A support rod connected to the lamp holder; A motor, fixedly connected to the support rod; A lamp body is rotatably connected to the motor, and the motor is used to drive the lamp body to rotate a preset angle value to train the eye muscles in the corresponding direction; wherein the lamp body includes a lighting lamp tube and a plurality of red light beads arranged at intervals along the length direction of the lamp body; The controller is electrically connected to the plurality of red light beads, and is used to control the plurality of red light beads to flash in sequence along the length direction of the lamp body.
2. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The plurality of red light lamp beads are all LED lamp beads capable of emitting red light with a wavelength of 650nm.
3. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The preset angle value is 45°.
4. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The multiple red light lamp beads include a first lamp bead and a second lamp bead, the diameter of the first lamp bead is greater than the diameter of the second lamp bead, the first lamp bead is located in the middle of the lamp body, and the multiple second lamp beads are distributed at intervals on both sides of the first lamp bead.
5. The eye muscle training and eye protection desk lamp as claimed in claim 4, characterized in that: The diameter of the first lamp bead is 2 cm, and the diameter of the second lamp bead is 2 mm.
6. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The support rod includes a fixed rod and a bending adjustment rod, one end of the fixed rod is fixedly connected to the lamp holder, the other end of the fixed rod is fixedly connected to the bending adjustment rod, and the end of the bending adjustment rod away from the fixed rod is connected to the lamp body.
7. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: An eye tracker is also included, and the eye tracker is installed on the lamp body.
8. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The distance between the centers of two adjacent red light beads is 2 cm.
9. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: It also includes a voice reminder device, which is installed on the lamp holder.
10. The eye muscle training and eye protection desk lamp according to claim 1, characterized in that: The lighting lamp tube is a full-spectrum lighting lamp tube.
Citation Information
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