Electronic equipment
By designing a rotatable first and second body and a photoelectric conversion module in the electronic device and adjusting their positional relationship, the problem of battery life caused by the fragility and high power of solar panels was solved, enabling power supply under different device forms and enhancing the battery life of the electronic device.
Patent Information
- Application Number
- CN202520144361.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-21
- Publication Date
- 2026-01-16
- Estimated Expiration
- 2035-01-21
AI Technical Summary
In existing technologies, solar panels are fragile and have high power consumption, making them difficult to apply directly to mobile electronic devices such as laptops and mobile phones, resulting in limited battery life.
Design an electronic device that, by rotating a first and a second body connected together, and combining them with a photoelectric conversion module, adjusts their relative positional relationship to change the receiving area and illumination angle of the photoelectric conversion module, thereby achieving power supply under different device forms.
It improves the power output of the photoelectric conversion module, meets the power requirements of different equipment configurations, reduces the degree of limitation in use, and enhances the battery life of electronic devices.
Smart Images

Figure CN223808703U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to electronic equipment technical field, especially electronic equipment. BACKGROUND
[0002] With the improvement of people's environmental protection consciousness, the utilization proportion of green energy such as solar energy increases year by year.But the utilization of solar energy has great limitations, so that the use of electronic equipment using solar energy is limited.
[0003] Current consumer photovoltaic panels are mostly used in power banks and other equipment, and it is difficult to directly apply design to become related products because of the problems such as large power and fragile solar panel on notebook computers, mobile phones and other mobile electronic devices.Under the condition of not connecting power supply, the computer endurance time completely depends on the capacity of the battery, so increasing the endurance time of notebook computer through solar panel has great significance for users to relieve endurance anxiety. UTILITY MODEL CONTENTS
[0004] Therefore, the utility model provides an electronic equipment to reduce the degree of limitation and facilitate the use of electronic equipment.
[0005] To achieve the above object, the utility model provides the following technical scheme:
[0006] An electronic equipment comprises:
[0007] A first body and a second body are rotationally connected, the first body can rotate relative to the second body to make the electronic equipment have different equipment forms;
[0008] A photoelectric conversion module is movably connected with the first body, and the photoelectric conversion module can move relative to the first body to change the relative position relationship between the photoelectric conversion module and the first body;
[0009] The photoelectric conversion module can have different relative position relationships with the first body when the electronic equipment is in different equipment forms, so as to provide different auxiliary functions for the electronic equipment.
[0010] Optionally, in the above electronic equipment, the photoelectric conversion module comprises a plate body structure with a thickness;
[0011] The photoelectric conversion module comprises a first photoelectric conversion module arranged on a first surface of the plate body structure and a second photoelectric conversion module arranged on a second surface of the plate body structure, and the first surface and the second surface are two surfaces of the plate body structure arranged opposite along the thickness direction;
[0012] The photoelectric conversion efficiency of the first photoelectric conversion module and the second photoelectric conversion module is the same or different.
[0013] Optionally, in the electronic device, the projection area of the first photoelectric conversion module and the second photoelectric conversion module on the plate body structure is the same or different.
[0014] And / or,
[0015] The material of the first photoelectric conversion module and the second photoelectric conversion module is the same or different.
[0016] And / or,
[0017] The first photoelectric conversion module and the second photoelectric conversion module supply power to the same or different power receiving components in the electronic device.
[0018] Optionally, in the electronic device, the electronic device further includes a first connecting device for realizing the rotational connection of the first body and the second body, and the photoelectric conversion module can rotate relative to the first body through the first connecting device to have different included angles with the first body.
[0019] Wherein, in the case that the photoelectric conversion module has different included angles with the first body, the photoelectric conversion module can provide different acting forces to the electronic device.
[0020] Optionally, in the electronic device, the electronic device further includes at least one of the following:
[0021] In the first device form of the electronic device, the photoelectric conversion module has a first included angle with the first body to provide a first acting force to the electronic device.
[0022] In the second device form of the electronic device, the photoelectric conversion module has a second included angle with the first body to provide a second acting force to the electronic device.
[0023] In the third device form of the electronic device, the photoelectric conversion module has a third included angle with the first body to provide a third acting force to the electronic device.
[0024] Wherein, in different device forms of the electronic device, the power supply parameter of the power supply input provided by the photoelectric conversion module is different.
[0025] Optionally, in the electronic device, the electronic device further includes a second connecting device arranged on the first body, and the photoelectric conversion module can slide and / or rotate relative to the first body through the second connecting device to have different pose states relative to the first body.
[0026] wherein, in the different pose states, the photoelectric conversion module is capable of different types of movement relative to the first body.
[0027] Optionally, the electronic device further comprises at least one of the following:
[0028] in the first device form, the photoelectric conversion module is capable of sliding relative to the first body to have a first pose state;
[0029] in the second device form, the photoelectric conversion module is capable of sliding and rotating relative to the first body to have a second pose state;
[0030] in the third device form, the photoelectric conversion module is capable of rotating relative to the first body to have a third pose state;
[0031] wherein, in the different pose states, the photoelectric conversion module is capable of providing power input with different power supply parameters to the electronic device.
[0032] Optionally, in the electronic device, the photoelectric conversion module comprises:
[0033] a receiving housing having a receiving cavity and a receiving opening communicating between the receiving cavity and the outside of the receiving housing, an outer wall of the receiving housing having a connecting component connected with the first body;
[0034] a receiving rotating shaft arranged in the receiving cavity and rotationally matched with the receiving housing;
[0035] a first charging part photoelectric conversion component, the first charging part photoelectric conversion component being of a flexible structure, a first end of the first charging part photoelectric conversion component being connected with the receiving rotating shaft and capable of being wound on the receiving rotating shaft under rotation of the receiving rotating shaft, the first charging part photoelectric conversion component being capable of entering and exiting the receiving cavity through the receiving opening.
[0036] Optionally, in the electronic device, the photoelectric conversion module further comprises:
[0037] a second charging part photoelectric conversion component, the second charging part photoelectric conversion component being of a rigid structure, the second charging part photoelectric conversion component being connected with a second end of the first charging part photoelectric conversion component, the first end and the second end of the first charging part photoelectric conversion component being opposite ends of the first photoelectric conversion component respectively;
[0038] A sliding structure is fixed opposite to the receiving housing, and the first charging part photoelectric conversion component and / or the second charging part photoelectric conversion component can slide along the sliding structure.
[0039] Optionally, in the electronic device, the first body has a transparent region capable of transmitting light in a first direction.
[0040] The photoelectric conversion module and the first body have at least a first relative position relationship.
[0041] In the state of the first relative position, the projection of the photoelectric conversion module along the first direction at least partially covers the transparent region. BRIEF DESCRIPTION OF DRAWINGS
[0042] In order to more clearly illustrate the technical solutions in the embodiments of the present application or the prior art, the following will briefly introduce the drawings needed to be used in the embodiments or prior art description. Obviously, the drawings in the following description are only some embodiments of the present application, and for those skilled in the art, other drawings can also be obtained from these drawings without creative labor.
[0043] Figure 1 The first structure schematic diagram of the first electronic device provided by the embodiment of the present application is shown in the figure.
[0044] Figure 2 The second structure schematic diagram of the first electronic device provided by the embodiment of the present application is shown in the figure.
[0045] Figure 3 The cross-sectional schematic diagram of the photoelectric conversion module provided by the embodiment of the present application is shown in the figure.
[0046] Figure 4 The structure schematic diagram of the photoelectric conversion module provided by the embodiment of the present application is shown in the figure.
[0047] Figure 5 The first structure schematic diagram of the second electronic device provided by the embodiment of the present application is shown in the figure.
[0048] Figure 6 The second structure schematic diagram of the second electronic device provided by the embodiment of the present application is shown in the figure. DETAILED DESCRIPTION
[0049] The electronic device disclosed by the present application can reduce the degree of restriction and facilitate the use of the electronic device.
[0050] With reference to the drawings of the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments of the present application, all the other embodiments obtained by those skilled in the art without creative efforts fall within the scope of the present application.
[0051] The inventor has found that the electricity generated by the photoelectric conversion module (such as solar energy) is highly dependent on light intensity, receiving area, and illumination angle. For example, in the case of fixed angle and fixed light intensity, the larger the panel area receiving light, the more electricity the photoelectric conversion module generates. In the case of fixed receiving area and fixed light intensity, the angle between the receiving surface of the photoelectric conversion module and the light generated by the light source is different, and the electricity generated by the photoelectric conversion module is also different. For example, the electricity generated when the receiving surface is perpendicular to the light is more than that generated at other angles.
[0052] Therefore, as shown in the present application, an electronic device is provided, which includes a first body 100, a second body 200, and a photoelectric conversion module 300. Figures 1-6
[0053] The first body 100 and the second body 200 are rotationally connected, and the first body 100 can rotate relative to the second body 200 to make the electronic device have different device forms.
[0054] Taking a notebook computer as an example, one of the first body 100 and the second body 200 can have a display screen and other functional components, and the other can have a host system and other functional components. By rotating the first body 100 relative to the second body 200, the electronic device has at least two different device forms. That is, different opening angles of the first body 100 and the second body 200 can realize different device forms of the electronic device, and the different device forms at least include a PC (Personal Computer) form, a tent form, and a book form of the notebook computer. The PC form is a form in which the included angle between the display surface of the body having a display screen and the other body is less than 180° and the other body is placed on a bearing surface (such as a desktop), the tent form is a form in which the included angle between the display surface of the body having a display screen and the other body is greater than 180° and the first body 100 and the second body 200 are supported on the bearing surface, and the book form is a form in which the included angle between the display surface of the body having a display screen and the other body is less than 180° and the first body 100 and the second body 200 are supported on the bearing surface.
[0055] The first body 100 is relative to the second body 200 to rotate to the unfolded predetermined angle, realizing the unfolded form of the electronic device; the first body 100 is relative to the second body 200 to rotate to the closed, realizing the closed form of the electronic device. The electronic device can also be an AIO (All-in-One PC, computer all-in-one) or a display, one of the first body 100 and the second body 200 can have a display screen and other functional components, and the other can be a support for providing support for the display screen. The electronic device can also be a folding mobile phone, and the first body 100 and the second body 200 are two bodies of the folding mobile phone that can be folded relative to each other. The electronic device can also be other devices, which are not limited here and are within the protection scope.
[0056] The photoelectric conversion module 300 is movably connected with the first body 100, and the photoelectric conversion module 300 can move relative to the first body 100 to change the relative position relationship with the first body 100. The photoelectric conversion module 300 can convert light energy into electrical energy, therefore, the photoelectric conversion module 300 has at least a receiving surface capable of receiving light energy, which can be solar energy or other energy in the form of visible radiation. The photoelectric conversion module 300 can be a solar panel or other functional components capable of converting light energy into electrical energy. The receiving surface of the photoelectric conversion module 300 can directly or indirectly receive light energy to convert it into electrical energy. Since the photoelectric conversion module 300 is movably connected with the first body 100, the electrical energy converted by the photoelectric conversion module 300 can be delivered to the first body 100. The movable connection between the photoelectric conversion module 300 and the first body 100 can include at least one of detachable connection, rotatable connection and slidable connection, which can change the relative position relationship between the photoelectric conversion module 300 and the first body 100.
[0057] The photoelectric conversion module 300 can have different relative position relationships with the first body 100 in different device forms of the electronic device to provide different auxiliary functions to the electronic device. That is, in different device forms of the electronic device, the relative position relationship between the photoelectric conversion module 300 and the first body 100 can be changed to adjust at least one of the receiving area or the irradiation angle of the light source light in the photoelectric conversion module 300 (such as solar energy), thereby changing the electrical energy generated by the photoelectric conversion module 300 in the current device form, thereby providing different auxiliary functions to the electronic device.
[0058] That is, the power required by the electronic device in different device morphologies can be different, by adjusting the relative position relationship between the photoelectric conversion module 300 and the first body 100, so that the position, illumination angle or receiving area of the receiving surface of the photoelectric conversion module 300 receiving light energy changes, thereby changing the photoelectric conversion capability of the photoelectric conversion module 300, so as to provide different auxiliary functions to the electronic device. Among them, the difference of auxiliary function at least includes the different power provided to the electronic device. The photoelectric conversion module 300 can provide more power to the electronic device, and the photoelectric conversion module 300 can provide power to multiple or all functional components of the electronic device. Taking a notebook computer as an example, the first body 100 has a display screen power supply, the second body 200 has a host system, and the photoelectric conversion module 300 supplies power to the display screen in the first body 100 and the host system of the second body 200. The photoelectric conversion module 300 can also provide less power to the electronic device, and the photoelectric conversion module 300 can supply power to a single or small number of functional components of the electronic device. Taking a notebook computer as an example, the first body 100 has a display screen power supply, the second body 200 has a host system, and the photoelectric conversion module 300 only supplies power to the display screen in the first body 100 or only supplies power to the host system of the second body 200. Other functional components of the electronic device can be powered by an external power supply or a power storage component (such as a battery) of the electronic device. The photoelectric conversion module 300 can also supply power to the power storage component of the electronic device to charge the power storage component.
[0059] The electronic device provided by the embodiment of the utility model, under different device morphologies of electronic device, can realize that photoelectric conversion module 300 provides different auxiliary functions to electronic device. Because photoelectric conversion module 300 is movably connected with first body 100, compared with the electronic device that photoelectric conversion module 300 is fixedly arranged in first body 100 or second body 200, the position of photoelectric conversion module 300 is conveniently adjusted, so as to reduce the limited degree of photoelectric conversion module 300 in the use process, thereby facilitating the use of electronic device.
[0060] In some embodiments, the photoelectric conversion module 300 includes a plate structure having a thickness; the photoelectric conversion module 300 includes a first photoelectric conversion module 301 arranged on a first surface of the plate structure and a second photoelectric conversion module 302 arranged on a second surface of the plate structure, the first surface and the second surface being two surfaces of the plate structure arranged opposite along the thickness direction. In different device forms of the electronic device, the first photoelectric conversion module 301 and the second photoelectric conversion module 302 can be in a working state, or one of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 is in a working state and the other is in a non-working state. The specific arrangement depends on the positional relationship between the photoelectric conversion module 300 and the light source in the current device form of the electronic device. For example, in the PC form of the electronic device, the plate structure is arranged horizontally to make the first surface of the plate structure face the light source (the sun), and in this device form, the first surface of the plate structure is close to the surface of the first body 100 facing away from the second body 200. Since the first surface of the plate structure faces away from the bearing surface and the second surface of the plate structure faces the bearing surface, the second photoelectric conversion module 302 arranged on the second surface of the plate structure is blocked by the bearing surface, and the first photoelectric conversion module 301 arranged on the first surface of the plate structure is perpendicular to the light of the light source (the sun) as much as possible, so that the first photoelectric conversion module 301 is in a working state and the second photoelectric conversion module 302 is in a non-working state.
[0061] The photoelectric conversion efficiencies of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 are the same or different. When the photoelectric conversion efficiencies of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 are different, the first photoelectric conversion module 301 and the second photoelectric conversion module 302 can be made of different materials, for example, the material of the first photoelectric conversion module 301 is monocrystalline silicon material, and the material of the second photoelectric conversion module 302 is thin film / polycrystalline silicon material. The receiving areas of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 can also be different while the materials are the same. Of course, the materials of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 can also be the same and the receiving areas can also be the same, so that the photoelectric conversion efficiencies of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 are the same.
[0062] The projection areas of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 on the plate structure are the same or different. Taking the projection area of the first photoelectric conversion module 301 as an example, the projection area of the first photoelectric conversion module 301 can be the projection area of the overall structure of the first photoelectric conversion module 301 on the plate structure, or the projection area of one of the plurality of photoelectric conversion units in the first photoelectric conversion module 301 on the plate structure.
[0063] The material of the first photoelectric conversion module 301 and the second photoelectric conversion module 302 can be the same or different. The material of the photoelectric conversion module can be a polycrystalline silicon plate, a dye-sensitized plate, a thin film plate, a polycrystalline silicon material, etc.
[0064] The first photoelectric conversion module 301 and the second photoelectric conversion module 302 supply power to the same or different power receiving components in the electronic device. The power receiving components can be functional components of the electronic device, such as a display screen, a system mainboard, a battery, etc. In the embodiment in which the first photoelectric conversion module 301 and the second photoelectric conversion module 302 supply power to the same power receiving component in the electronic device, the power receiving component can preferably be a power storage component (such as a battery) to supply power to other functional components of the electronic device, thereby indirectly supplying power to the photoelectric conversion module 300. The first photoelectric conversion module 301 and the second photoelectric conversion module 302 can also supply power to different power receiving components in the electronic device. For example, the first photoelectric conversion module 301 supplies power to the display screen or the system mainboard of the electronic device to ensure normal use of the electronic device, and the second photoelectric conversion module 302 supplies power to the power storage component (such as a battery) of the electronic device to charge the power storage component.
[0065] In some embodiments, the electronic device further comprises a first connecting device for realizing the rotational connection of the first body 100 and the second body 200. The photoelectric conversion module 300 can rotate relative to the first body 100 through the first connecting device to have different included angles with the first body 100. That is, the photoelectric conversion module 300 can rotate relative to the first body 100, and by rotating the photoelectric conversion module 300 to different positions relative to the first body 100, the photoelectric conversion module 300 can realize different functions. The first connecting device can include a rotating shaft or the like to realize the rotational connection of the first body 100 and the second body 200.
[0066] In the case that the photoelectric conversion module 300 and the first body 100 have different included angles, the photoelectric conversion module 300 can provide different forces to the electronic device. Among them, since the photoelectric conversion module 300 is connected with the first body 100, in the state that the photoelectric conversion module 300 does not contact other structures (such as a bearing surface), the force can be gravity, and the first body 100, the first connecting device or the second body 200 provides a supporting force to the photoelectric conversion module 300, that is, the gravity of the photoelectric conversion module 300 is transmitted to the first body 100, the first connecting device or the second body 200. By adjusting the included angle between the photoelectric conversion module 300 and the first body 100, the center of gravity of the electronic device can be adjusted, so that the electronic device can be stably placed on the bearing surface. In the state that the photoelectric conversion module 300 contacts other structures (such as a bearing surface), the force can be a supporting force, that is, the photoelectric conversion module 300 can be used as a support or part of a support, so as to provide a supporting force to the first body 100, the first connecting device or the second body 200. The force can also be a damping force or other force. The included angle between the photoelectric conversion module 300 and the first body 100 can be an acute angle, an obtuse angle or a right angle, and the specific angle can be adjusted according to the actual use requirement of the electronic device. In the case of different included angles, the photoelectric conversion module 300 can provide at least one of different size and direction of force to the electronic device.
[0067] The electronic device can have at least one of a first device form, a second device form and a third device form.
[0068] In the case that the electronic device is in the first device form, the photoelectric conversion module 300 and the first body 100 have a first included angle to provide a first force to the electronic device. The first force can be an opening and closing assisting force to assist the electronic device to be in the first device form. Taking a notebook computer as an example, in the case that the electronic device is in the first device form, the opening and closing angle of the notebook computer is less than 90°, that is, the included angle between the first body 100 and the second body 200 is less than 90°. In the case that the first included angle between the photoelectric conversion module 300 and the first body 100 is an acute angle, the gravity of the photoelectric conversion module 300 can be used as an opening and closing assisting force of the first body 100 and the second body 200, which facilitates the user to open and close the notebook computer with one hand.
[0069] In the second device form, the photoelectric conversion module 300 and the first body 100 have a second included angle to provide a second force to the electronic device. The second force can be 0 or a support force to the electronic device. Taking a notebook computer as an example, in the second device form, the opening angle of the notebook computer is 90°, i.e., the included angle between the first body 100 and the second body 200 is 90°. In the state that the second included angle between the photoelectric conversion module 300 and the first body 100 is 90°, the photoelectric conversion module 300 can be in contact with the bearing surface to be used as a support or part of the support of the electronic device to provide a support force to the electronic device and improve the stability of the notebook computer placed on the bearing surface. Of course, the photoelectric conversion module 300 can also be made not to be in contact with the bearing surface.
[0070] In the third device form, the photoelectric conversion module 300 and the first body 100 have a third included angle to provide a third force to the electronic device. The third force is a support force to the electronic device. Taking a notebook computer as an example, in the third device form, the opening angle of the notebook computer is greater than 90°, i.e., the included angle between the first body 100 and the second body 200 is greater than 90°. In the state that the third included angle between the photoelectric conversion module 300 and the first body 100 is obtuse, the photoelectric conversion module 300 can be in contact with the bearing surface to be used as a support or part of the support of the electronic device to provide a support force to the electronic device and improve the stability of the notebook computer placed on the bearing surface. In this form, the side of the second body 200 close to the first connecting device can be away from the bearing surface, so that the second body 200 and the photoelectric conversion module 300 away from the side of the first connecting device are in contact with the bearing surface to support the electronic device.
[0071] In different device forms, the power supply parameters of the power input provided by the photoelectric conversion module 300 are different. That is, the conversion efficiency of the photoelectric conversion module 300 in different device forms is different, so that the power supply parameters of the power input are different. By making the power supply parameters of the power input different in different device forms, the power supply can be matched with the use state of the electronic device.
[0072] In other embodiments, the electronic device further comprises a second connecting device arranged on the first body 100, and the optoelectronic conversion module 300 can slide and / or rotate relative to the first body 100 through the second connecting device to have different pose states relative to the first body 100; that is, the optoelectronic conversion module 300 can slide, rotate, or slide and rotate relative to the first body 100, and the optoelectronic conversion module 300 is moved to different positions relative to the first body 100 through the second connecting device to make the optoelectronic conversion module 300 have different pose states relative to the first body 100. That is, the second connecting device can include guide rails and the like components, and the optoelectronic conversion module 300 can realize the lifting in the vertical direction or the movement in the horizontal direction through the sliding along the guide rails to make the position of the receiving surface of the optoelectronic conversion module 300, so that the light emitted by the light source can be better received, and the electronic device can also be conveniently stored by adjusting the pose state of the optoelectronic conversion module 300 relative to the first body 100. The second connecting device can also include a rotating shaft and the like components to realize the rotating connection of the first body 100 and the optoelectronic conversion module 300, so that the optoelectronic conversion module 300 can be folded relative to the first body 100 to adjust the angle of the receiving surface of the optoelectronic conversion module 300, so that the light emitted by the light source can be better received, and the electronic device can also be conveniently stored by adjusting the pose state of the optoelectronic conversion module 300 relative to the first body 100. Wherein, the movement type of the optoelectronic conversion module 300 relative to the first body 100 is different when the optoelectronic conversion module 300 has different pose states. For example, the second connecting device can also include sliding components such as guide rails and rotating components such as rotating shafts to realize the sliding and folding of the optoelectronic conversion module 300 relative to the first body 100, wherein components with locking and unlocking functions can be arranged to make the optoelectronic conversion module 300 slide to a specific position relative to the first body 100 and then unlock the rotating function, or make the optoelectronic conversion module 300 rotate to a specific angle relative to the first body 100 and then unlock the sliding function. For example, the rotating components such as rotating shafts are located at the end (top) of the sliding components such as guide rails, and the rotating function of the rotating components is unlocked when the optoelectronic conversion module 300 slides to the highest point relative to the first body 100 along the sliding components to adjust the setting angle of the optoelectronic conversion module 300 at the end of the sliding components.
[0073] As shown in Figure 5 and Figure 6 In some specific embodiments, the second connecting device includes a sliding rail 370 and a rotating structure, so that the optoelectronic conversion module 300 can slide relative to the first body 100 through the sliding rail 370 of the second connecting device, and the optoelectronic conversion module 300 can rotate relative to the first body 100 through the rotating structure of the second connecting device. As shown in Figure 6As shown, the photoelectric conversion module 300 is located on the surface of the first body 100 (e.g. the side of the first body 100 without a display screen or without display function), and the slide rail 370 is arranged on the surface of the first body 100 and is connected to the first body 100 and the photoelectric conversion module 300 in a sliding manner. The photoelectric conversion module 300 can be located on the surface of the first body 100, i.e. the photoelectric conversion module 300 is accommodated on the surface of the first body 100, which does not affect the use of the first body 100 and the second body 200 and reduces the influence of the photoelectric conversion module 300 on the volume of the electronic device in this state. The photoelectric conversion module 300 in this position state is suitable for indoor use of the electronic device or scenarios where the photoelectric conversion module 300 is not planned to be used. In this state, the photoelectric conversion module 300 can shield the light irradiated on the surface of the first body 100, avoiding the surface of the first body 100 being directly exposed to the sun and being heated, and avoiding the reflection of direct light on the screen and other influences, thereby effectively reducing the adverse effects of the heating of the first body 100 caused by the irradiation of light (e.g. sunlight).
[0074] The angle between the first body 100 and the photoelectric conversion module 300 can be 0°, i.e. the first body 100 and the photoelectric conversion module 300 are relatively parallel.
[0075] In addition, the photoelectric conversion module 300 can slide relative to the first body 100 through the slide rail 370, which can realize the position adjustment of the photoelectric conversion module 300 along the extension direction of the first body 100, thereby adjusting the position of the photoelectric conversion module 300 relative to the first body 100, and adjusting the position relationship between the photoelectric conversion module 300 and the light source (e.g. the sun) without changing the position state of the first body 100.
[0076] The rotating structure can be located on the side of the first body 100 away from the rotating connection between the first body 100 and the second body 200. When the photoelectric conversion module slides along the first body 100 to a position away from the rotating connection between the first body 100 and the second body 200, the photoelectric conversion module 300 can rotate relative to the first body 100 to adjust the angle between the photoelectric conversion module 300 and the first body 100. For example, Figure 5As shown, the photoelectric conversion module 300 can be folded relative to the first body 100 and located above the second body 200, so that the photoelectric conversion module 300, the first body 100 and the second body 200 are sequentially connected into a "C" shape structure, and the photoelectric conversion module 300 is used as a shielding piece to shield the first body 100 and the second body 200. The photoelectric conversion module 300 in this pose state is suitable for the scenario that the electronic device is used outdoors or in an environment with relatively strong light. Since the photoelectric conversion module 300 can shield the first body 100 and the second body 200, in the embodiment in which the first body 100 has a display screen, the display screen can be shielded, so as to change the ambient brightness of the periphery of the display screen, facilitate the user to receive the display information of the display screen, and also reduce the screen brightness requirement of the display screen, facilitate the screen brightness of the display screen to be reduced to save power, and further improve the endurance of the electronic device. Of course, the rotating structure can also be arranged on one side of the first body 100 close to the rotating connection between the first body 100 and the second body 200 (for example, as shown). Figure 1 The rotating structure can also be arranged at other positions of the first body 100, which will not be specifically described herein and are within the protection scope.
[0077] In the embodiment, the photoelectric conversion module 300 is folded relative to the first body 100 to a predetermined position, and the first body 100 can support the photoelectric conversion module 300 through a fixed buckle or a supporting surface to maintain the shielding effect of the photoelectric conversion module 300. The predetermined position at which the photoelectric conversion module 300 is folded relative to the first body 100 can be multiple or one. That is, the angle between the photoelectric conversion module 300 and the first body 100 in the state that the photoelectric conversion module 300 is folded relative to the first body 100 can be 60°, 90° or 120°, so as to adjust the positional relationship between the receiving surface of the photoelectric conversion module 300 and the light source (such as the sun), especially the angle between the light emitted by the light source and the receiving surface of the photoelectric conversion module 300, thereby improving the conversion efficiency of the photoelectric conversion module 300 and the electric energy generated by the photoelectric conversion module 300.
[0078] Of course, the photoelectric conversion module 300 can also be folded relative to the first body 100, so that the photoelectric conversion module 300 is located on the side of the first body 100 away from the second body 200. That is, the photoelectric conversion module 300 does not shield the first body 100 and the second body 200, so that the photoelectric conversion module 300, the first body 100 and the second body 200 are sequentially connected into a "Z" shape structure. By adjusting the angle between the photoelectric conversion module 300 and the first body 100, the positional relationship between the receiving surface of the photoelectric conversion module 300 and the light source (such as the sun) can also be adjusted, thereby improving the electric energy generated by the photoelectric conversion module 300.
[0079] It can be understood that the photoelectric conversion module 300 can be manually pushed and pulled to realize the sliding of the photoelectric conversion module 300 relative to the first body 100 and the rotation (folding) of the photoelectric conversion module 300 relative to the first body 100. The sliding and rotation (folding) of the photoelectric conversion module 300 relative to the first body 100 can also be realized by increasing an electrically driven device.
[0080] The photoelectric conversion module 300 and the first body 100 can be connected by a cable. The photoelectric conversion module 300 is connected to the first body 100 through the power input end 380. During the relative rotation and sliding of the photoelectric conversion module 300 and the first body 100, the position of the power input end 380 remains unchanged. Through the adjustment of the length and structure of the cable, the electrical connection between the photoelectric conversion module 300 and the first body 100 is maintained.
[0081] The power input end 380 can be detachably plugged with the first body 100, or can be fixedly connected with the first body 100. The power input end 380 can be located on the side of the first body 100 away from the rotating connection between the first body 100 and the second body 200, i.e., the power input end 380 is located on the side of the first body 100 where the rotating structure is arranged.
[0082] The electronic device can have at least one of a first device form, a second device form and a third device form.
[0083] When the electronic device is in the first device form, the photoelectric conversion module 300 can slide relative to the first body 100 to have a first pose state; that is, when the electronic device is in the first device form, the photoelectric conversion module 300 is in sliding cooperation with the first body 100. In some specific embodiments, the photoelectric conversion module 300 can be in sliding cooperation with the surface of the first body 100 (such as the surface of the first body 100 facing away from the second body 200) to realize the state that the photoelectric conversion module 300 extends along the surface of the first body 100.
[0084] In the second device form, the photoelectric conversion module 300 can slide and rotate relative to the first body 100 to have a second pose state; that is, in the second device form, the photoelectric conversion module 300 can slide and rotate with the first body 100. In some embodiments, the photoelectric conversion module 300 can slide with the first surface of the first body 100 (for example, the surface of the first body 100 facing away from the second body 200) to realize the contraction of the photoelectric conversion module 300 along the surface of the first body 100, and when the photoelectric conversion module 300 slides to a first specific position relative to the first body 100, it can be folded to realize the position and posture of the photoelectric conversion module 300 at least partially shielding the second surface of the first body 100 (for example, the surface of the first body 100 facing the second body 200, having a display screen), facilitating the storage of the electronic device. The photoelectric conversion module 300 can also extend along the surface of the first body 100, and when the photoelectric conversion module 300 slides to a second specific position relative to the first body 100, it can be folded to realize the position and posture of the photoelectric conversion module 300 not shielding the second surface of the first body 100 (for example, the surface of the first body 100 facing the second body 200, having a display screen), facilitating the use of the electronic device.
[0085] In the third device form, the photoelectric conversion module 300 can rotate relative to the first body 100 to have a third pose state; that is, in the third device form, the photoelectric conversion module 300 rotates with the first body 100. Through the above arrangement, the folding of the photoelectric conversion module 300 relative to the first body 100 is realized to realize the switching of the photoelectric conversion module 300 between shielding the second surface of the first body 100 (for example, the surface of the first body 100 facing the second body 200, having a display screen) and not shielding the second surface of the first body 100.
[0086] In different pose states, the photoelectric conversion module 300 can provide different power parameters of power input to the electronic device. That is, in different device forms, the conversion efficiency of the photoelectric conversion module 300 can be different, so that the power parameters of the power input are different. By making the power parameters of the power input different in different device forms of the electronic device, the power supply can be matched with the use state of the electronic device.
[0087] A third photoelectric conversion module can also be provided on the first body 100, and the photoelectric conversion efficiency of the third photoelectric conversion module can be the same as or different from that of the first photoelectric conversion module 301 and the second photoelectric conversion module 302. Moreover, the first photoelectric conversion module 301 and the second photoelectric conversion module 302 and the third photoelectric conversion module can supply power to the same or different power receiving components in the electronic device.
[0088] In some embodiments, the photoelectric conversion module 300 comprises a receiving housing 330 and a first photoelectric conversion component 350, wherein the receiving housing 330 has a receiving cavity and a receiving opening in communication with the receiving cavity and the outside of the receiving housing 330, and the outer wall of the receiving housing has a connecting component 310 connected with the first body 100. The connecting component 310 can be a plug-in part, and the plug-in of the connecting component 310 with the first body 100 realizes the physical and electrical connection of the photoelectric conversion module 300 with the first body 100. The first photoelectric conversion component 350 is flexible, and the first photoelectric conversion component 350 can enter and exit the receiving cavity through the receiving opening. Through the above arrangement, the photoelectric conversion module 300 can have at least a state that the first photoelectric conversion component 350 is entirely received in the receiving housing 330, a state that the first photoelectric conversion component 350 is partially received in the receiving housing 330 and partially located outside the receiving housing 330 through the receiving opening, and a state that the first photoelectric conversion component 350 is entirely located outside the receiving housing 330. Through the adjustment of different states, the adjustment of the receiving area of the first photoelectric conversion component 350 can be realized, so that the photoelectric conversion module 300 can provide power input with different power parameters to the electronic device.
[0089] In order to facilitate the receiving adjustment of the first photoelectric conversion component 350, the photoelectric conversion module 300 further comprises a receiving rotating shaft 360, the first end of the first photoelectric conversion component 350 is connected with the receiving rotating shaft 360 and can be wound on the receiving rotating shaft 360 under the rotation of the receiving rotating shaft 360, and the receiving rotating shaft 360 is arranged in the receiving cavity and rotationally matched with the receiving housing 330. The receiving rotating shaft 360 can be rotationally matched with the receiving housing 330 through a driving device (such as a rotary motor), and the driving of the driving device on the receiving rotating shaft 360 realizes the receiving and extension of the first photoelectric conversion component 350. The receiving rotating shaft 360 can also be rotationally matched with the receiving housing 330 through a return spring, the second end (the end away from the first end) of the first photoelectric conversion component 350 is located outside the receiving opening, the second end of the first photoelectric conversion component 350 is pulled to make the receiving rotating shaft 360 rotate against the elastic restoring force of the return spring, so that the first photoelectric conversion component 350 extends out of the receiving housing 330, and the first photoelectric conversion component 350 is fixed through a positioning structure. When the first photoelectric conversion component 350 needs to be received, the positioning structure is contacted and positioned, the receiving rotating shaft 360 rotates under the action of the elastic restoring force of the return spring, so that the first photoelectric conversion component 350 is wound on the receiving rotating shaft 360 to complete the receiving.
[0090] The driving device can be in communication connection with a host system of the electronic device, and the actual receiving area required by the photoelectric conversion module 300 can be calculated according to the power consumption of the use state of the electronic device, so as to control the area of the first photoelectric conversion component 350 extending out of the receiving shell 330 by the driving device.
[0091] Of course, the receiving shaft 360 can also not be arranged in the receiving shell 330, which is not specifically described herein and is within the protection scope.
[0092] Further, the photoelectric conversion module further comprises a second photoelectric conversion component 320 and a sliding structure 340. The photoelectric conversion efficiency of the first photoelectric conversion component 350 and the second photoelectric conversion component 320 can be the same or different.
[0093] The second photoelectric conversion component 320 is a rigid structure, and the second photoelectric conversion component 320 is connected to the second end of the first photoelectric conversion component 350. The first end and the second end of the first photoelectric conversion component 350 are opposite ends of the first photoelectric conversion component 350, i.e., the two ends of the first photoelectric conversion component 350 in the length direction. The first photoelectric conversion component 350 and the second photoelectric conversion component 320 can jointly perform photoelectric conversion, or one of the first photoelectric conversion component 350 and the second photoelectric conversion component 320 can perform photoelectric conversion. For example, in the state that the first photoelectric conversion component 350 is received in the receiving cavity of the receiving shell 330, the second photoelectric conversion component 320 performs photoelectric conversion; in the state that the first photoelectric conversion component 350 extends out of the receiving cavity of the receiving shell 330, the first photoelectric conversion component 350 performs photoelectric conversion.
[0094] The sliding structure 340 is fixed relative to the receiving shell 330, and the first photoelectric conversion component 350 and / or the second photoelectric conversion component 320 can slide along the sliding structure 340. In order to facilitate the connection of the photoelectric conversion module 300 and the first body 100, the sliding structure 340 and the connecting component 310 are respectively located on both sides of the receiving shell 330. The sliding structure 340 can be a guide rail structure, and the number of the guide rail structure is two and symmetrically arranged on both sides of the second photoelectric conversion component 320, which provides support force for the second photoelectric conversion component 320 and the first photoelectric conversion component 350 in the extended state.
[0095] The photoelectric conversion component further comprises a positioning structure, which can position the first photoelectric conversion component 350 and / or the second photoelectric conversion component 320 relative to the sliding structure 340. The positioning structure can be arranged on the sliding structure 340, or arranged on the first photoelectric conversion component 350 or the second photoelectric conversion component 320, as long as it can realize the positioning and unlocking of the relative position of the photoelectric conversion component and the sliding structure 340. Specifically, the positioning structure can be a buckle, a fastening bolt or a clamping jaw, etc.
[0096] The first body 100 has a transparent region which transmits light along the first direction. The transparent region can be all or part of the first body 100. The photoelectric conversion module has at least a first relative position relationship with the first body. The first relative position relationship can be achieved by adjusting the relative position of the photoelectric conversion module and the first body. In the first relative position, the projection of the photoelectric conversion module 300 along the first direction at least partially covers the transparent region. That is, the photoelectric conversion module 300 can be used as a background component of the transparent region to highlight the display content of the transparent region.
[0097] Taking a notebook computer as an example, the first body 100 can have a transparent screen. When the ambient light intensity is high, the screen brightness is not enough to affect the display effect. In this case, the photoelectric conversion module and the first body can be adjusted to the first relative position relationship, and the projection of the photoelectric conversion module 300 along the first direction at least partially covers the transparent region, so that the background of the transparent screen is the solid color of the photoelectric conversion module 300, thereby enhancing the display effect of the transparent screen.
[0098] The embodiments in the specification are described in a progressive manner, and each embodiment focuses on the difference from other embodiments. The same or similar parts between the embodiments can be referred to each other.
[0099] The above description of the disclosed embodiments enables a person skilled in the art to implement or use the present application. Various modifications to the embodiments will be apparent to those skilled in the art, and the general principles defined herein can be implemented in other embodiments without departing from the spirit or scope of the present application. Therefore, the present application will not be limited to the embodiments shown herein, but will conform to the widest scope consistent with the principles and novel features disclosed herein.
Claims
1. An electronic device, comprising: The electronic device comprises: a first body and a second body connected in rotation, the first body being capable of rotating relative to the second body to enable the electronic device to have different device morphologies; a photoelectric conversion module movably connected to the first body, the photoelectric conversion module being capable of moving relative to the first body to change the relative positional relationship between the photoelectric conversion module and the first body; wherein the photoelectric conversion module is capable of having different relative positional relationships with the first body when the electronic device is in different device morphologies, to provide different auxiliary functions for the electronic device.
2. The electronic device of claim 1, wherein, The photoelectric conversion module comprises a plate structure having a thickness; The photoelectric conversion module comprises a first photoelectric conversion module arranged on a first face of the plate structure and a second photoelectric conversion module arranged on a second face of the plate structure, the first face and the second face being two faces of the plate structure oppositely arranged along the thickness direction; The photoelectric conversion efficiencies of the first photoelectric conversion module and the second photoelectric conversion module are the same or different.
3. The electronic device of claim 2, wherein, The projection areas of the first photoelectric conversion module and the second photoelectric conversion module on the plate structure are the same or different. And / or, The materials of the first photoelectric conversion module and the second photoelectric conversion module are the same or different. And / or, The first photoelectric conversion module and the second photoelectric conversion module supply power to the same or different power-receiving components in the electronic device.
4. The electronic device of claim 1 or 2, wherein, The electronic device further comprises a first connecting device for realizing the rotational connection of the first body and the second body, the photoelectric conversion module being capable of rotating relative to the first body through the first connecting device to have different included angles with the first body; wherein the photoelectric conversion module is capable of providing different forces for the electronic device when the photoelectric conversion module has different included angles with the first body.
5. The electronic device of claim 4, wherein, Further comprising at least one of the following: when the electronic device is in a first device morphology, the photoelectric conversion module has a first included angle with the first body to provide a first force for the electronic device; when the electronic device is in a second device morphology, the photoelectric conversion module has a second included angle with the first body to provide a second force for the electronic device; when the electronic device is in a third device morphology, the photoelectric conversion module has a third included angle with the first body to provide a third force for the electronic device; wherein the power supply parameters of the power supply input provided by the photoelectric conversion module are different when the electronic device is in different device morphologies.
6. The electronic device of claim 1 or 2, wherein, The electronic device further comprises a second connecting device arranged on the first body, the photoelectric conversion module being capable of sliding and / or rotating relative to the first body through the second connecting device to have different pose states relative to the first body; wherein the photoelectric conversion module is capable of having different movement types relative to the first body when the photoelectric conversion module has different pose states.
7. The electronic device of claim 6, wherein, Further comprising at least one of the following: In a first device form, the photoelectric conversion module is capable of sliding relative to the first body to have a first pose state; In a second device form, the photoelectric conversion module is capable of sliding and rotating relative to the first body to have a second pose state; In a third device form, the photoelectric conversion module is capable of rotating relative to the first body to have a third pose state; In different pose states, the photoelectric conversion module is capable of providing power input with different power parameters to the electronic device.
8. The electronic device of claim 1, wherein, The photoelectric conversion module comprises: a receiving housing having a receiving cavity and a receiving opening communicating between the receiving cavity and the outside of the receiving housing, an outer wall of the receiving housing having a connecting component connected with the first body; a receiving rotating shaft arranged in the receiving cavity and rotationally matched with the receiving housing; a first photoelectric conversion component in a flexible structure, a first end of the first photoelectric conversion component being connected with the receiving rotating shaft and capable of winding on the receiving rotating shaft under rotation of the receiving rotating shaft, the first photoelectric conversion component being capable of entering and exiting the receiving cavity through the receiving opening.
9. The electronic device of claim 8, wherein, The photoelectric conversion module further comprises: a second photoelectric conversion component in a rigid structure, the second photoelectric conversion component being connected with a second end of the first photoelectric conversion component, the first end and the second end of the first photoelectric conversion component being opposite ends of the first photoelectric conversion component; a sliding structure fixed relative to the receiving housing, the first photoelectric conversion component and / or the second photoelectric conversion component being capable of sliding along the sliding structure.
10. The electronic device of claim 1, wherein, The first body has a transparent region capable of transmitting light in a first direction; The photoelectric conversion module and the first body have at least a first relative position relationship; In the first relative position state, a projection of the photoelectric conversion module along the first direction at least partially covers the transparent region.