Electronic device and ophthalmic electronic device
By using embedded injection molding process in electronic equipment, the sensor is installed in the housing space of the housing and connected with the circuit board with elastic conductive parts, the complex electrical connection problem of sensors is solved, and a simple and fast connection process and stable electrical connection are achieved.
Patent Information
- Application Number
- CN202421223568.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-31
- Publication Date
- 2025-05-06
- Estimated Expiration
- 2034-05-31
AI Technical Summary
The electrical connection method of sensors in existing electronic devices is complex, making it difficult to achieve a simple and fast connection process.
An electronic device is designed with sensors placed in the housing space of the housing through an inlaid injection molding process and electrically connected to the circuit board through elastic conductive parts, eliminating the dependence on additional wires.
It realizes a stable and reliable electrical connection between the sensor and the circuit board, simplifies the installation and manufacturing process, and improves the convenience and stability of the connection.
Smart Images

Figure CN222828957U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of electronic equipment, in particular to an electronic equipment with a sensor and an eye-use electronic equipment. Background Art
[0002] At present, the electronic products used in people's daily life are becoming more and more abundant, and the intelligence of electronic products is increasing. In order to reduce the user's operation or save energy consumption, more and more electronic devices are equipped with sensors to detect the user's approach or distance, and automatically control the operation of the electronic device according to the relevant approach signal or distance signal detected by the sensor. However, the electrical connection method of sensors in current electronic devices is often directly connected through wires, and the connection process is complicated. Utility Model Content
[0003] The utility model aims to provide an electronic device and an eye-use electronic device, the electrical connection process of the sensor of which is simple and quick.
[0004] An embodiment of the utility model provides an electronic device, comprising a housing and a sensor, wherein the sensor is used to detect an approach signal and / or a distance signal.
[0005] The housing comprises a first sensor mounting shell and a second sensor mounting shell, the first sensor mounting shell comprises an outer contact wall and an inner wall, the second sensor mounting shell is located on one side of the inner wall of the first sensor mounting shell, the first sensor mounting shell and the second sensor mounting shell enclose an accommodating space, and the sensor is installed in the accommodating space;
[0006] The electronic device also includes a circuit board and an elastic conductive member connected to the circuit board. The second sensor mounting shell has an installation channel connected to the accommodating space. The circuit board is fixedly mounted on the shell. The elastic conductive member passes through the installation channel and abuts against the sensor to electrically connect the sensor and the circuit board.
[0007] As a further improvement of an implementation mode of the utility model, the sensor is placed in the accommodating space through an embedded injection molding process.
[0008] As a further improvement of an implementation mode of the utility model, the sensor is a sheet-like structure; the sensor is in contact with the inner wall of the first sensor mounting shell.
[0009] As a further improvement of an implementation manner of the utility model, the shape of the accommodating space is the same as the shape of the sensor; the sensor is fitted with a wall of the second sensor mounting shell.
[0010] As a further improvement of an embodiment of the utility model, the axial direction of the installation channel is perpendicular to the sensor; the elastic conductive member is a spring, and the circuit board is perpendicular to the axial direction of the installation channel; and the sensor is a metal sheet.
[0011] As a further improvement of an embodiment of the utility model, the second sensor mounting shell is also provided with a fixing channel, and the circuit board is fixedly connected to the second sensor mounting shell via a fastener connected to the fixing channel; the fastener is a bolt, and the fastener is threadedly connected to the fixing channel.
[0012] To solve the above problems, an embodiment of the utility model further provides an ophthalmic electronic device, comprising: a housing, wherein an ophthalmic treatment and / or detection component is installed in the housing;
[0013] A sensor for detecting an approach signal and / or a distance signal;
[0014] A controller, used to control the eye treatment and / or detection component according to the approach signal and / or the distance signal; characterized in that:
[0015] The housing comprises a first sensor mounting shell and a second sensor mounting shell, the first sensor mounting shell comprises an outer contact wall and an inner wall, the second sensor mounting shell is located on one side of the inner wall of the first sensor mounting shell, the first sensor mounting shell and the second sensor mounting shell enclose an accommodating space, and the sensor is installed in the accommodating space;
[0016] The eye-use electronic device also includes a circuit board and an elastic conductive member connected to the circuit board. The second sensor mounting shell has a mounting channel connected to the accommodating space. The circuit board is fixedly mounted on the shell. The elastic conductive member passes through the mounting channel and abuts against the sensor to electrically connect the sensor and the circuit board.
[0017] As a further improvement of an embodiment of the utility model, the shell has a wearing surface, the wearing surface is a curved surface that matches the facial contour, and the outer contact wall forms at least a part of the wearing surface.
[0018] As a further improvement of an embodiment of the utility model, the eye treatment and / or detection component is installed on the circuit board.
[0019] As a further improvement of an embodiment of the utility model, the eye treatment and / or detection component includes a light source component, and the light source component includes a periocular light source for irradiating the periorbital area; the shell has an annular light path channel corresponding to the periocular light source, and the light of the periocular light source is transmitted through the annular light path channel.
[0020] As a further improvement of an embodiment of the utility model, the eye treatment and / or detection component includes a light source component, and the light source component includes at least one of a combined image light source, a pupil laser light source, and a multi-spectrum light source. The shell has a light outlet, and light from at least one of the combined image light source, the pupil laser light source, and the multi-spectrum light source is transmitted from the light outlet.
[0021] As a further improvement of an embodiment of the utility model, the shell includes a main shell, a front end shell and a window shell, the front end shell is connected to the main shell, the window shell is provided with the annular optical path channel, the front end portion of the window shell forms part of the wearing surface, the front end shell is also provided with two mounting through holes, the window shell is installed in the mounting through holes, and the first sensor mounting shell is connected to the two mounting through holes and protrudes outward relative to the two mounting through holes.
[0022] As a further improvement of an embodiment of the utility model, the eye treatment and / or detection component also includes a camera element arranged in the shell, and the camera element is used to capture eye images; the eye electronic device also includes a controller, and the controller is used to obtain the eye status according to the eye image, and control the opening and closing of the light source component according to the eye status.
[0023] As a further improvement of an embodiment of the utility model, the light source assembly includes an eye-peripheral light source; the controller is specifically used for:
[0024] When the sensor detects a proximity signal, if the eye state is an open eye state, the light source around the eye is controlled to reduce power or turn off; if the eye state is a closed eye state, the light source around the eye is controlled to operate at rated power;
[0025] When the sensor detects a distance signal, the peri-ocular light source is controlled to reduce power or be turned off.
[0026] As a further improvement of an embodiment of the utility model, it also includes a controller, and the controller is used to control the eye treatment and / or detection component to reduce power or shut down when the sensor detects a distance signal.
[0027] As a further improvement of an implementation mode of the utility model, the sensor is placed in the accommodating space of the shell through an insert injection molding process.
[0028] As a further improvement of an implementation mode of the utility model, the sensor is a sheet-like structure; the sensor is in contact with the inner wall of the first sensor mounting shell.
[0029] As a further improvement of an implementation manner of the utility model, the shape of the accommodating space is the same as the shape of the sensor; the sensor is fitted with a wall of the second sensor mounting shell.
[0030] As a further improvement of an embodiment of the utility model, the axial direction of the installation channel is perpendicular to the sensor; the elastic conductive member is a spring, and the circuit board is perpendicular to the axial direction of the installation channel; and the sensor is a metal sheet.
[0031] As a further improvement of an embodiment of the utility model, the second sensor mounting shell is also provided with a fixing channel, and the circuit board is fixedly connected to the second sensor mounting shell via a fastener connected to the fixing channel; the fastener is a bolt, and the fastener is threadedly connected to the fixing channel.
[0032] In the electronic device and eye-use electronic device provided by the utility model, the sensor is directly installed inside the shell, and the sensor and the circuit board are electrically connected through an elastic conductive member, without the need for additional wires. The installation and manufacturing process is simple and fast, and the connection is stable. BRIEF DESCRIPTION OF THE DRAWINGS
[0033] Figure 1 It is a three-dimensional schematic diagram of an eye-use electronic device according to one embodiment of the utility model;
[0034] Figure 2 for Figure 1 Exploded schematic diagram of eye-use electronic device shown;
[0035] Figure 3 for Figure 1 A simplified schematic diagram of a cross section of an eye-use electronic device is shown;
[0036] Figure 4 for Figure 2 A simplified schematic diagram of a cross section of an eye-use electronic device is shown;
[0037] Figure 5 for Figure 1 An exploded schematic diagram of some components of an eye-use electronic device is shown;
[0038] Figure 6 for Figure 1 A three-dimensional schematic diagram of some components of an eye-use electronic device is shown;
[0039] Figure 7 for Figure 6 A partial cross-sectional schematic diagram of some components of an ophthalmic electronic device is shown;
[0040] Figure 8 for Figure 6 A schematic diagram of a sensor of an eye-use electronic device is shown;
[0041] Fig. 9 for Figure 3 Another cross-sectional schematic diagram of the eye-use electronic device shown;
[0042] Fig.10 for Fig. 9 A schematic diagram of some components of an eye-use electronic device is shown;
[0043] Fig.11 for Fig. 9 A schematic diagram of a first circuit board of the ophthalmic electronic device shown;
[0044] Fig.12 for Fig. 9 A schematic diagram of a second circuit board of the eye-use electronic device shown;
[0045] Fig.13 for Figure 1 An exploded schematic diagram of the main part of the eye-use electronic device shown;
[0046] Fig.14 for Fig.13 The window housing is shown as a perspective view at an angle;
[0047] Fig.15 for Fig.14 A three-dimensional schematic diagram of the window housing from another angle is shown. DETAILED DESCRIPTION
[0048] The following detailed description refers to the drawings that form a part of this specification. The illustrative embodiments mentioned in the specification and the drawings are for illustrative purposes only and are not intended to limit the scope of protection of the present application. Under the enlightenment of the present application, those skilled in the art will understand that many other embodiments can be adopted, and various changes can be made to the described embodiments without departing from the main purpose and scope of protection of the utility model. It should be understood that the various aspects of the present application described and illustrated herein can be arranged, replaced, combined, separated and designed according to many different configurations, and these different configurations are within the scope of protection of the present application.
[0049] An embodiment of the utility model provides an electronic device. The electronic device comprises a housing and a sensor. The sensor is used to detect an approach signal and / or a distance signal.
[0050] The sensor is used to detect the approach and distance of the user. When the sensor detects that the user is within a preset distance, a proximity signal may be detected. When the sensor detects that the distance between the user and the sensor is greater than a preset distance, a distance signal may be detected. The preset distance may be 0 or close to 0, or greater than 0. The sensor may be used only to detect proximity signals, or only to detect distance signals, or to detect both proximity signals and distance signals. Specifically, the selection may be made according to the use requirements of the electronic device.
[0051] In one embodiment, the sensor may be a contact sensor, the approach signal may be a contact signal, and the distance signal may be a non-contact signal.
[0052] The sensor may be a capacitive sensor. When a user approaches the sensor, the capacitance of the sensor changes, so that the approach and distance of the user can be determined based on the change in capacitance.
[0053] A controller may also be provided inside the electronic device, and the controller may be connected to the sensor for communication, and control the operation of the electronic device according to the proximity signal and / or the distance signal detected by the sensor. For example, the opening and closing of the electronic device may be controlled according to the proximity signal and / or the distance signal detected by the sensor. When the proximity signal is detected, the electronic device may be controlled to automatically open, and when the distance signal is detected, the electronic device may be controlled to automatically close, thereby reducing the opening and closing operations required by the user and reducing energy consumption. The controller also controls the operation of other electrical components in the electronic device according to the proximity signal and / or the distance signal detected by the sensor.
[0054] In one embodiment of the present invention, the electronic device is an eye-use electronic device.
[0055] As follows, a detailed description is given using an eye-use electronic device as an example.
[0056] See also Figures 1 to 4 The eye-wearing electronic device may include a host 10 and an eye mask assembly 20.
[0057] The sensor 420 can be installed in the host 10, and the host 10 can also be provided with a battery 12. The eye mask assembly 20 can be detachably connected to the host 10. Figure 1 and Figure 3 is a schematic diagram of the eye mask assembly 20 being installed on the host 10, Figure 2 and Figure 4 It is a schematic diagram of the eye mask assembly 20 and the host 10 when they are separated.
[0058] The eye mask assembly 20 and the host 10 can be connected by snapping, and magnets 21 can be provided at corresponding positions of the housing 100 of the host 10 and the eye mask assembly 20. When the eye mask assembly 20 is snapped onto the host 10, the corresponding magnets 21 attract each other, which can improve the stability of the connection and facilitate the replacement and use of the eye mask assembly 20.
[0059] The host 10 may include a housing 100. Figures 5 to 8 The housing 100 includes a first sensor mounting shell 122 and a second sensor mounting shell 123. The first sensor mounting shell 122 includes an outer contact wall 1221 and an inner wall, and the second sensor mounting shell 123 is located on one side of the inner wall of the first sensor mounting shell 122. The first sensor mounting shell 122 and the second sensor mounting shell 123 enclose an accommodation space, and the sensor 420 is installed in the accommodation space. The sensor 420 can be stably installed inside the housing 100.
[0060] The ophthalmic electronic device further includes a circuit board 400 and an elastic conductive member 410 connected to the circuit board 400. The second sensor mounting shell 123 has a mounting channel 125 connected to the accommodating space. The circuit board 400 is fixedly mounted on the housing 100. The elastic conductive member 410 passes through the mounting channel 125 and abuts against the sensor 420 to electrically connect the sensor 420 and the circuit board 400. The elastic conductive member 410 undergoes elastic deformation during use to ensure the reliability of the electrical connection. This design not only improves the convenience of installation, but also ensures a stable connection between the sensor 420 and the circuit board 400.
[0061] In one embodiment of the utility model, the ophthalmic electronic device further comprises an ophthalmic treatment and / or detection component. The ophthalmic treatment and / or detection component can be installed in the housing 100 .
[0062] The eye treatment and / or detection component can be a component for eye treatment, or a detection component for detecting eye conditions or eye diseases, or can be used for both detection and treatment.
[0063] See also Figure 3 , Figure 4 In one embodiment of the utility model, the eye treatment and / or detection assembly may include a light source assembly. The light source assembly may be used to treat vision problems or relieve eye fatigue. The light source assembly may include at least one of a combined image light source 220, a pupil laser light source 210, and a multi-spectrum light source 230. The housing 100 may have a light outlet 131, and light from at least one of the combined image light source 220, the pupil laser light source 210, and the multi-spectrum light source 230 may be transmitted from the light outlet 131.
[0064] In this embodiment, the housing 100 may include two light outlets 131. Two groups of light source components corresponding to the two light outlets 131 may be disposed in the housing 100. Light from the two groups of light source components will not intersect each other, and the light from the two groups of light source components is transmitted independently through the corresponding light outlets 131.
[0065] In a specific embodiment of the present invention, the housing 100 may include two lens barrels 130, each lens barrel 130 may have a light outlet 131, and a set of light source components may be installed inside each lens barrel 130. During use by the user, the light of the light source component is transmitted through the light outlet 131 and enters the user's eyes.
[0066] There may be a plurality of combined image light sources 220, and two groups of symmetrical light-emitting elements may be provided in the two lens barrels 130. When a user wears the eye-use electronic device, the user can be used as a reference, the side close to the user is the front, and the side away from the user is the back. At the same time, the user can be used as a reference, the upper side of the user is the top, and the lower side of the user is the bottom. The combined image light source 220 in each lens barrel 130 may include a plurality of light-emitting elements arranged in sequence from top to bottom or from front to back.
[0067] In the specific implementation mode provided by the utility model, the light-emitting parts in the lens barrel 130 are arranged in sequence from front to back, and the two light-emitting parts located on the same horizontal line in the two lens barrels 130 can be considered as a light-emitting part group. During use, different light-emitting part groups are opened and closed in sequence according to a predetermined order. When the spacing between the two light-emitting parts of a light-emitting part group is the same as or close to the pupil distance, the two eyes can recognize the two light sources as a light source point, that is, the binocular image is achieved, and when the spacing between the two light-emitting parts of a light-emitting part group does not match the pupil distance, the light source points seen by the eyes are two scattered light source points, and are in a non-image state. In the image mode, the user observes the light source points in the lens barrel 130, and by controlling the opening and closing of the light-emitting parts, the image and non-image training can be performed, which can exercise the ciliary muscle, relieve visual fatigue, prevent myopia, and treat pseudomyopia.
[0068] The pupil laser light source 210 is used to illuminate the pupil. The pupil laser light source 210 can be a 650nm red light. By irradiating the pupil with 650nm red light, the development of cone cells is stimulated, which can be used to treat amblyopia. At the same time, it can promote blood circulation and dopamine secretion, improve scleral hypoxia, and delay the development of myopia.
[0069] The multi-spectrum light source 230 may include a color light emitting element that emits at least two different colors of light. Preferably, the multi-spectrum light source 230 includes a color light emitting element that emits three different colors of light.
[0070] In a specific embodiment, the multi-spectral light source 230 includes a color light emitting component that emits three different colors of red, green, and blue. During use, the red, green, and blue lights flash alternately, which can stimulate cone cells and promote visual development. Specifically, it can be used to treat refractive errors, anisometropia, and strabismic amblyopia.
[0071] In another embodiment provided by the present invention, the eye treatment and / or detection component may include a periocular light source 240 for irradiating the periorbital area. The periocular light source 240 may be a 650nm laser light source. During use by the user, the light of the periocular light source 240 only irradiates the periorbital area and does not enter the user's eye. By stimulating the periorbital area of the user through the periocular light source 240, the blood circulation around the eye can be improved, thereby improving visual fatigue.
[0072] In this embodiment, the eye treatment and / or detection component can be installed on the circuit board 400. Specifically, the periocular light source is installed on the circuit board 400. In this embodiment, the eye treatment and / or detection component and the sensor 420 are electrically connected to the same circuit board 400, which reduces the number of required electronic components, makes the overall structure more compact, and facilitates the miniaturization design of the whole machine.
[0073] The housing 100 has an annular optical path corresponding to the periocular light source 240, and the light of the periocular light source 240 is transmitted through the annular optical path. Since the laser power of the periocular light source 240 is relatively strong, it is easy to cause damage to the human eye. By setting the annular optical path, the light of the periocular light source 240 can be accurately guided to the corresponding area around the eye to avoid entering the user's eyes and causing damage to the user's eyes.
[0074] Of course, the eye treatment and / or detection component may also include at least one of the periocular light source 240 and the pupil laser light source 210 , the combined imaging light source 220 , and the multi-spectral light source 230 .
[0075] When the eye-viewing electronic device includes multiple light sources, the eye-viewing electronic device may be a multifunctional eye-viewing electronic device, that is, it may have multiple functional modes, and the eye-viewing electronic device may have a functional mode switch, and the user may select the corresponding function through the functional mode switch.
[0076] In the specific implementation of the present invention, the ophthalmic electronic device is equipped with an eye-peripheral light source 240, a pupil laser light source 210, a combined image light source 220 and a multi-spectrum light source 230. The user can control any light source to turn on through the function mode switch.
[0077] The periorbital light source is mounted on the circuit board 400. Figures 9 to 12, a first circuit board 134 may also be installed in the ophthalmic electronic device. In the axial direction X2 of the lens barrel 130, the lens barrel 130 may include a front end where the light outlet 131 is provided and a rear end opposite to the front end. The first circuit board 134 may be provided at the rear end of the lens barrel 130. The ophthalmic electronic device may further include a second circuit board 135, which may be provided at the circumferential wall 132 of the lens barrel 130.
[0078] The first circuit board 134 may be placed inside the lens barrel 130. The rear end of the lens barrel 130 may be open to facilitate installation of the first circuit board 134. When the first circuit board 134 is installed at the rear end of the lens barrel 130, the electrical components installed on the first circuit board 134 are directly placed inside the lens barrel 130.
[0079] The second circuit board 135 may be disposed outside the lens barrel 130. The second circuit board 135 may be disposed outside the circumferential wall 132 of the lens barrel 130 and placed at the lower part of the lens barrel 130. The circumferential wall 132 of the lens barrel 130 may be provided with a through hole 133, and the light emitting member in the light source assembly may be mounted on the second circuit board 135 and extend into the interior of the lens barrel 130 through the through hole 133. Such a configuration facilitates the installation of the first circuit board 134 and the second circuit board 135, and the through hole 133 on the circumferential wall 132 of the lens barrel 130 cooperates with the light source to achieve a certain positioning of the second circuit board 135, which facilitates the installation of the second circuit board 135.
[0080] In this embodiment, the first circuit board 134 and the second circuit board 135 can be electrically connected. The rear end of the second circuit board 135 can have an electrical connection portion 1351, and the first circuit board 134 can have a plug portion 1341 that matches the electrical connection portion 1351. The electrical connection portion 1351 can be inserted into the plug portion 1341 to electrically connect the first circuit board 134 and the second circuit board 135. In this way, there is no need to connect through wires, and the connection can be made directly during the installation process, which is convenient for the installation and manufacturing process.
[0081] The first circuit board 134 and the second circuit board 135 can be arranged at an angle. The circumferential wall 132 of the lens barrel 130 can be arranged at an angle, and when the second circuit board 135 is attached to the circumferential wall 132 of the lens barrel 130, the first circuit board 134 and the second circuit board 135 can be at an acute angle. Such an arrangement can reduce the size of the entire device in the length direction, which is conducive to miniaturization design.
[0082] The pupil laser light source 210 is installed on the first circuit board 134, and the first circuit board 134 is arranged at the rear end corresponding to the light outlet 131, that is, the pupil laser light source 210 is directly opposite to the light outlet 131, and its light can be directly transmitted to the pupil through the light outlet 131, so the treatment effect is better.
[0083] The multi-spectrum light source 230 is mounted on the first circuit board 134. The combined image light source is mounted on the second circuit board 135. The ophthalmic electronic device further includes a light homogenizer 138, and the light of the multi-spectrum light source 230 can pass through the light homogenizer 138 and then be transmitted through the light outlet 131. The light homogenizer 138 can be mounted on the front side of the first circuit board 134 and cover the multi-spectrum light source 230. By arranging the light homogenizer 138 on the front side of the multi-spectrum light source 230, it can be ensured that the light of the multi-spectrum light source 230 has a uniform light visual sense after being emitted, providing a better user experience.
[0084] The first circuit board 134 may also be equipped with an imaging element 136. The imaging element 136 may be used to capture eye images and obtain information such as eye status information, pupil distance, etc. A driving component 500 may also be installed in the housing 100, and the driving component 500 may automatically drive the lens barrel 130 to move according to the pupil distance so that the light source component in the lens barrel 130 and the eyes are imaged.
[0085] The first circuit board 134 may also be equipped with a fill light 137. It is understood that the camera element 136 and the fill light 137 are arranged opposite to the light outlet 131. During use, the light outlet 131 is opposite to the user's eye 001, and the camera element 136 can clearly capture the user's eye image through the light outlet 131.
[0086] Each group of multi-spectrum light sources 230 includes a color light emitting element that emits three colors of light. The fill light 137, the camera element 136 and the multi-spectrum light source 230 are arranged around the pupil laser light source 210. The color light emitting elements are arranged in a triangle.
[0087] The light diffuser 138 may be provided with a through hole corresponding to the pupil laser light source 210, and the light of the pupil laser light source 210 may be directly transmitted without passing through the light diffuser 138. The above arrangement facilitates the provision of the light diffuser 138, and different electrical components can achieve good effects.
[0088] The combined image light source 220 can be installed on the second circuit board 135. Several light-emitting components of the combined image light source 220 can be tilted along the length direction of the second circuit board 135. The arrangement direction of the light-emitting components of the two combined image light sources 220 can be in an eight-shaped shape.
[0089] Furthermore, in one embodiment of the present invention, the controller 11 is used to control the eye treatment and / or detection components to reduce power or shut down when the sensor 420 detects a distance signal. This can reduce the operations required by the user, improve the overall intelligence level, reduce energy consumption, and increase the standby time of the eye electronic device.
[0090] Furthermore, in one embodiment of the present invention, the eye treatment and / or detection component may also include an imaging element 136 disposed in the housing 100, and the imaging element 136 is used to capture eye images.
[0091] The controller 11 is also used to obtain the eye status according to the eye image, and control the light source assembly to turn on and off according to the eye status.
[0092] Specifically, the controller 11 is used to control the periorbital light source 240 to turn off or reduce the power when the sensor 420 detects an approach signal, if the eye state is an open eye state, so as to effectively prevent the periorbital light source 240 from entering the human eye and causing damage to the eye. If the eye state is a closed eye state, the periorbital light source 240 is controlled to operate at rated power to relieve eye fatigue. At the same time, when the sensor 420 detects a distance signal, the periorbital light source 240 is controlled to reduce the power or turn off, so as to prevent the light of the periorbital light source 240 from accidentally injuring the human eye after being emitted, and at the same time, it can save energy consumption and increase the standby time of the electronic device for eye use.
[0093] Furthermore, in one embodiment of the present invention, the sensor 420 is installed in the accommodation space by insert injection molding. That is, during the injection molding process of the housing 100, the accommodation space is formed and the sensor 420 is placed inside the accommodation space, thereby improving the fixing reliability and installation convenience of the sensor 420. The sensor 420 is a sheet structure, which fits the inner wall of the first sensor mounting shell 122, which can further improve the accuracy of detection.
[0094] Continue to see Figures 5 to 8 The shape of the accommodation space is the same as that of the sensor 420, ensuring that the sensor 420 is completely matched with the accommodation space, avoiding the movement of the sensor 420 in the accommodation space, and improving the stability and detection accuracy of the device. The axial direction of the installation channel 125 can be perpendicular to the sensor 420, the elastic conductive member 410 can be a spring, the circuit board 400 is perpendicular to the axial direction of the installation channel 125, and the sensor 420 is a metal sheet. In this way, the connection between the sensor 420 and the circuit board 400 is more stable, ensuring the reliability of the electrical connection, and reducing the overall space occupation.
[0095] The second sensor mounting shell 123 is further provided with a fixing channel 126, and the circuit board is fixedly connected to the second sensor mounting shell 123 via a fastener 127 connected to the fixing channel 126. The fastener 127 may be a bolt, and the fastener 127 is threadedly connected to the fixing channel 126, thereby ensuring a stable connection between the circuit board 400 and the second sensor mounting shell, and further ensuring the stability of the electrical connection between the elastic conductive member 410 and the sensor 420.
[0096] Furthermore, in one embodiment of the present invention, the housing 100 has a wearing surface, which is a curved surface that matches the facial contour, and the outer contact wall 1221 of the first sensor mounting shell 122 forms at least a part of the wearing surface.
[0097] In this embodiment, the eye-use electronic device is worn on the head. When the user wears the eye-use electronic device, the wearing surface is close to the user's face and can fit the user's face or nearly fit the user's face. The wearing surface is designed as a curved surface that matches the facial contour, conforming to ergonomic design, and can better play the function of the eye treatment and / or detection component while satisfying the user's comfort.
[0098] The outer contact wall 1221 of the first sensor mounting shell 122 forms part of the wearing surface. When the user wears the eye-mounted electronic device, the outer contact wall 1221 fits or nearly fits the user's face, and the sensor 420 can detect the approach signal and / or the distance signal more accurately.
[0099] See also Fig.13 The housing 100 further includes a main housing 110, a front housing 120 and a window housing 300. The front housing 120 may be connected to the main housing 110, the window housing 300 may be provided with an annular optical path channel, and the front end portion of the window housing 300 may form part of the wearing surface.
[0100] The sensor 420 may be installed in the front housing 120 . That is, the front housing 120 may have a first sensor mounting shell 122 and a second sensor mounting shell 123 , and an accommodation space for mounting the sensor 420 is formed between the first sensor mounting shell 122 and the second sensor mounting shell 123 .
[0101] In a specific embodiment, the sensor 420 is mounted on the front housing by insert injection molding.
[0102] The front housing 120 may also be provided with two mounting through holes 121, and the window housing 300 is mounted in the mounting through holes 121. The first sensor mounting shell 122 may connect the two mounting through holes 121 and protrude outward relative to the two mounting through holes 121, so that the outer contact wall of the first sensor mounting shell 122 may form part of the wearing surface. When the user wears the device, the sensor 420 may detect the approach signal or the distance signal more accurately.
[0103] In one embodiment of the present invention, the window housing 300 is disposed in front of the light outlet 131. The lens barrel 130 can be installed in the main housing 110, and the window housing 300 is located in front of the lens barrel 130. Two window housings 300 can be provided, and the two window housings 300 are respectively provided corresponding to the two light outlets 131. The window housing 300 can have a light input end 340 and a light output end 350, and the light input end 340 can be close to the light outlet 131, and the light of the light source assembly can enter the annular light path channel from the light input end 340, and then be transmitted from the light output end 350.
[0104] See also Fig.14 , Fig.15The window housing 300 may include a first light shielding wall 310 and a second light shielding wall 320. The second light shielding wall 320 may be located inside the first light shielding wall 310. The second light shielding wall 320 may enclose a first light path channel 360 corresponding to the light outlet 131. The light in the housing 100 may enter the first light path channel 360 from the light outlet 131 and then be emitted. A second annular light path channel 370 may also be formed between the first light shielding wall 310 and the second light shielding wall 320. The second light path channel 370 corresponds to the peri-ocular light source 240. The light of the peri-ocular light source 240 may enter the second light path channel 370 and then be emitted.
[0105] The first light shielding wall 310 and the second light shielding wall 320 are both opaque walls, forming two light path channels, so that the window housing 300 can isolate the light of the peri-ocular light source 240 from the light emitted from the light outlet 131 to avoid interference between different lights. At the same time, the light outlet end 350 of the window housing 300 can form a wearing surface, that is, when the user wears the eye-use electronic device, the light outlet end 350 of the window housing 300 is close to the user's face and can fit the user's face or nearly fit the user's face. The light outlet end 350 of the first light path 360 forms a window window.
[0106] During the installation process, the window shell 300 can be first installed on the front shell 120, and then the front shell 120 can be installed on the main shell 110. When the front shell 120 is installed on the main shell 110, the first optical path channel of the window shell 300 corresponds to the light outlet 131 of the lens barrel 130.
[0107] The circuit board 400 may be disposed between the main housing 110 and the window housing 300. The circuit board 400 may have an opening corresponding to the lens barrel 130. The peri-ocular light source 240 may be mounted on the circuit board 400 and arranged at intervals along the circumferential direction. The peri-ocular light source 240 may extend from the end of the window housing 300 into the second optical path channel 370. The circuit board 400 is provided with an opening corresponding to the light outlet 131, which will not affect the transmission of the light inside the lens barrel 130 to the first optical path channel 360 of the window housing 300. The peri-ocular light source 240 directly extends into the second optical path channel 370, ensuring that the light of the peri-ocular light source 240 is transmitted only through the second optical path channel 370.
[0108] The circuit board 400 can be connected to the front housing 120. The rear end of the first light shielding wall 310 can be provided with a flange 321, which can abut against the circuit board 400 to improve the installation stability of the circuit board 400. At the same time, the flange 321 can be connected to the front housing 120, and a protrusion can be provided on the flange 321, and the front housing 120 can be provided with a groove that matches the protrusion, and the two can be plugged and connected.
[0109] Specifically, the window housing 300 can be snap-fitted to the front housing 120, the circuit board 400 can be fixedly connected to the front housing 120 by means of the fastener 127, and the front housing 120 can be snap-fitted to the main housing 110. During the installation and manufacturing process, the window housing 300 can be first installed on the front housing 120, and then the circuit board 400 can be fixed to the front housing 120, and finally the front housing 120 can be connected to the main housing 110. The overall installation process is simple and quick.
[0110] During use, the user's eyes correspond to the window, so that the light from the pupil laser light source 210, the combined image light source 220 or the multi-spectrum light source 230 can be guided into the eye, and the light output end of the second optical path channel 370 directly corresponds to the periorbital area, so that the light from the periorbital light source 240 can be guided to the periorbital area through the second optical path channel 370. That is, the window housing 300 can guide the light from different light source components to a better position, thereby achieving a better treatment effect.
[0111] Furthermore, in this embodiment, the window housing 300 further includes a light-transmitting wall 330, which is disposed at an end away from the light outlet 131 and connects the first light-shielding wall 310 and the second light-shielding wall 320. The light-transmitting wall 330 is a curved surface that matches the contour of the eye area.
[0112] In this embodiment, the light-transmitting wall 330 is arranged at the light-emitting end of the second light path channel 370. It can be understood that the light-transmitting wall 330 is formed of a light-transmitting material. After the light of the periocular light source 240 passes through the second light path channel 370, it passes through the light-transmitting wall 330 and is transmitted to the periocular area. The light-transmitting wall 330 can protect the periocular light source 240 and prevent foreign matter from entering the second light path channel 370 of the window shell 300 and affecting the light path transmission. At the same time, the light-transmitting wall 330 can form part of the wearing surface, and the light-transmitting wall 330 is designed to be a curved surface that matches the periocular contour. During the wearing process, the light-transmitting wall 330 can extend along the periocular area and be close to the periocular contour, thereby guiding the light of the periocular light source 240 to the periocular area, and can reduce the light leakage of the periocular light source 240, so as to achieve a better treatment effect.
[0113] Furthermore, in this embodiment, the eye-use electronic device further includes a light-blocking gasket 380, which is mounted on the front end of the second light-shielding wall 320 and is arranged around the circumference of the second light-shielding wall 320, and the light-blocking gasket 380 at least partially extends to the outside of the second light-shielding wall 320. The light-blocking gasket 380 can be a rubber member, and the light-blocking gasket 380 encloses a window corresponding to the first light path channel 360, and the light-blocking gasket 380 can form part of the wearing surface.
[0114] The curved surface where the light-blocking gasket 380 is located can be a curved surface that matches the contour of the eye periphery. When the user wears the eye-use electronic device, the light-blocking gasket 380 fits closely to the eye periphery, thereby preventing the light in the first light path channel 360 from escaping, and preventing the light in the second light path channel 370 from entering the eye. By providing the light-blocking gasket 380, the use safety of the eye-use electronic device can be effectively improved, and the user can be allowed to use the eye periphery light source 240 with the eyes open.
[0115] It should be understood that although this specification is described according to implementation modes, not every implementation mode contains only one independent technical solution. This description of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each implementation mode may also be appropriately combined to form other implementation modes that can be understood by those skilled in the art.
[0116] The series of detailed descriptions listed above are only specific descriptions of feasible implementation methods of the utility model. They are not intended to limit the protection scope of the utility model. Any equivalent implementation methods or changes that do not deviate from the technical spirit of the utility model should be included in the protection scope of the utility model.
Claims
1. An electronic device, comprising: A housing and a sensor, wherein the sensor is used to detect an approach signal and / or a distance signal, and is characterized in that: The housing comprises a first sensor mounting shell and a second sensor mounting shell, the first sensor mounting shell comprises an outer contact wall and an inner wall, the second sensor mounting shell is located on one side of the inner wall of the first sensor mounting shell, the first sensor mounting shell and the second sensor mounting shell enclose an accommodating space, and the sensor is installed in the accommodating space; The electronic device also includes a circuit board and an elastic conductive member connected to the circuit board. The second sensor mounting shell has an installation channel connected to the accommodating space. The circuit board is fixedly mounted on the shell. The elastic conductive member passes through the installation channel and abuts against the sensor to electrically connect the sensor and the circuit board.
2. The electronic device according to claim 1, wherein: The sensor is placed in the accommodating space through an insert injection molding process.
3. The electronic device according to claim 1, wherein: The sensor is a sheet-like structure; the sensor is fitted to the inner wall of the first sensor mounting shell.
4. The electronic device according to claim 3, characterized in that: The shape of the accommodating space is the same as that of the sensor; and the sensor is fitted with a wall of the second sensor mounting shell.
5. The electronic device according to claim 4, characterized in that: The axial direction of the installation channel is perpendicular to the sensor; the elastic conductive member is a spring, and the circuit board is perpendicular to the axial direction of the installation channel; and the sensor is a metal sheet.
6. The electronic device according to claim 5, characterized in that: The second sensor mounting shell is also provided with a fixing channel, and the circuit board is fixedly connected to the second sensor mounting shell via a fastener connected to the fixing channel; the fastener is a bolt, and the fastener is threadedly connected to the fixing channel.
7. An ophthalmic electronic device, comprising: A housing having an eye treatment and / or detection component installed therein; A sensor for detecting an approach signal and / or a distance signal; A controller, used to control the eye treatment and / or detection component according to the approach signal and / or the distance signal; characterized in that: The housing comprises a first sensor mounting shell and a second sensor mounting shell, the first sensor mounting shell comprises an outer contact wall and an inner wall, the second sensor mounting shell is located on one side of the inner wall of the first sensor mounting shell, the first sensor mounting shell and the second sensor mounting shell enclose an accommodating space, and the sensor is installed in the accommodating space; The eye-use electronic device also includes a circuit board and an elastic conductive member connected to the circuit board. The second sensor mounting shell has a mounting channel connected to the accommodating space. The circuit board is fixedly mounted on the shell. The elastic conductive member passes through the mounting channel and abuts against the sensor to electrically connect the sensor and the circuit board.
8. The ophthalmic electronic device according to claim 7, wherein: The shell has a wearing surface which is a curved surface matching the facial contour, and the outer contact wall forms at least a part of the wearing surface.
9. The ophthalmic electronic device according to claim 8, wherein: The eye treatment and / or detection component is mounted on the circuit board.
10. The ophthalmic electronic device according to claim 9, wherein: The eye treatment and / or detection component includes a light source component, which includes a periocular light source for irradiating the periorbital area; the shell has an annular light path channel corresponding to the periocular light source, and the light of the periocular light source is transmitted through the annular light path channel.
11. The ophthalmic electronic device according to claim 8, wherein: The eye treatment and / or detection component includes a light source component, which includes at least one of a combined image light source, a pupil laser light source, and a multi-spectrum light source. The shell has a light outlet, and light from at least one of the combined image light source, the pupil laser light source, and the multi-spectrum light source is transmitted through the light outlet.
12. The ophthalmic electronic device according to claim 10, wherein: The shell includes a main shell, a front end shell and a window shell, the front end shell is connected to the main shell, the window shell is provided with the annular optical path channel, the front end portion of the window shell forms part of the wearing surface, the front end shell is also provided with two mounting through holes, the window shell is installed in the mounting through holes, and the first sensor mounting shell is connected to the two mounting through holes and protrudes outward relative to the two mounting through holes.
13. The ophthalmic electronic device according to claim 10 or 11, wherein: The eye treatment and / or detection component also includes a camera element arranged in the shell, and the camera element is used to capture eye images; the eye electronic device also includes a controller, and the controller is used to obtain the eye status according to the eye image and control the opening and closing of the light source component according to the eye status.
14. The ophthalmic electronic device according to claim 13, wherein: The light source assembly includes an eye-peripheral light source; the controller is specifically used for: When the sensor detects a proximity signal, if the eye state is an open eye state, the light source around the eye is controlled to reduce power or turn off; if the eye state is a closed eye state, the light source around the eye is controlled to operate at rated power; When the sensor detects a distance signal, the peri-ocular light source is controlled to reduce power or be turned off.
15. The ophthalmic electronic device according to claim 7, wherein: A controller is also included, which is used to control the eye treatment and / or detection component to reduce power or shut down when the sensor detects a distance signal.
16. The ophthalmic electronic device according to claim 7, wherein: The sensor is placed in the accommodating space of the shell through an insert injection molding process.
17. The ophthalmic electronic device according to claim 7, wherein: The sensor is a sheet-like structure; the sensor is fitted to the inner wall of the first sensor mounting shell.
18. The ophthalmic electronic device according to claim 17, wherein: The shape of the accommodating space is the same as that of the sensor; and the sensor is fitted with a wall of the second sensor mounting shell.
19. The ophthalmic electronic device according to claim 18, wherein: The axial direction of the installation channel is perpendicular to the sensor; the elastic conductive member is a spring, and the circuit board is perpendicular to the axial direction of the installation channel; and the sensor is a metal sheet.
20. The ophthalmic electronic device according to claim 7, wherein: The second sensor mounting shell is also provided with a fixing channel, and the circuit board is fixedly connected to the second sensor mounting shell via a fastener connected to the fixing channel; the fastener is a bolt, and the fastener is threadedly connected to the fixing channel.