Electric quantity display assembly and power supply device
Through the combined design of light guide components and mounting base, the alternate arrangement of dark areas and light emitting areas is formed by using the light blocking part, which solves the problem of insufficient intuitive power display, and realizes intuitive judgment of power and improves the reliability of components.
Patent Information
- Application Number
- CN202422256279.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-13
- Publication Date
- 2025-08-05
- Estimated Expiration
- 2034-09-13
AI Technical Summary
The luminous surface of the existing power display structure is too vague to the display length of the power, and the user's judgment of the amount of power is not intuitive enough.
By adopting a combination design of a light guide member and a mounting base, a light blocking part is formed by the interfacing of the partition body and the plug-in groove. The light guide member forms an alternating arrangement of a dark area and a light emitting area on the light emitting surface, and a clear power display is formed on the light guide member by using the light ray emitted by the lamp body.
It realizes intuitive judgment of power, improves the overall consistency and reliability of power display, avoids the shedding of the shielding film, and extends the service life of the components.
Smart Images

Figure CN223193511U_ABST
Abstract
Description
Technical Field
[0001] The present application belongs to the technical field of power supply equipment, and in particular relates to a power display component and a power supply device. Background Art
[0002] As more and more electronic devices are integrated into our lives, power supply devices are used more and more frequently. Power supply devices may include power-consuming devices, energy storage devices, charging devices, and energy conversion devices. Power supply devices are usually equipped with a power display structure for displaying the power level. The power display structure determines the amount of power in the power supply device based on the luminous length of the luminous surface on it.
[0003] In the related art, the length of the display of the power level on the luminous surface of the power display structure is too vague, and the user's judgment of the power level is not intuitive enough. Utility Model Content
[0004] The purpose of this application is to provide a power display component and a power supply device, aiming to solve the technical problem that the power display is not intuitive enough.
[0005] The first object of the present application is to provide a power display component, comprising:
[0006] The mounting base includes a base body and a plurality of partition bodies connected to the base body, wherein the base body is provided with a receiving groove extending along a preset direction, and the plurality of partition bodies are spaced apart along a preset direction X to divide the receiving groove into a plurality of receiving spaces;
[0007] A light-guiding component is provided, extending along a preset direction, and is accommodated in the accommodating groove. The light-guiding component forms a light-emitting surface at the notch of the accommodating groove. Corresponding to each of the partitions, the light-guiding component is provided with a plug-in groove. Each of the partitions is plugged into and matched with each of the plug-in grooves. A light-blocking portion is formed between the bottom surface of the plug-in groove and the light-emitting surface. The light-blocking portion forms a dark area on the light-emitting surface when the light-guiding component guides light.
[0008] The lamp assembly includes a plurality of lamp bodies, and each of the accommodating spaces is correspondingly configured with at least one of the lamp bodies.
[0009] In one embodiment, the light-guiding component has a microstructure inside, and the microstructure is used to limit light from entering the receiving groove from the light-emitting surface.
[0010] In one embodiment, the top surface of each partition body abuts against the bottom surface of the insertion slot, and the distance between the top surface of the partition body and the light-emitting surface is a preset distance, and the range of the preset distance is 0.5 mm-2 mm.
[0011] In one embodiment, the seat body and the partition body are an integrally formed structure; or
[0012] The seat body and the partition body are detachably connected.
[0013] In one embodiment, the mounting seat and the light guide component are an integrally formed structure.
[0014] In one embodiment, the light-guiding component forms a protrusion at the notch of the accommodating groove, the protrusion extends outward from the notch of the accommodating groove toward a direction away from the lamp body, and the light-emitting surface is located on the protruding end surface of the protrusion.
[0015] In one embodiment, the lamp assembly further includes a circuit board connected to the base body, the lamp body is electrically connected to the circuit board, and the bottom surface of the accommodating groove passes through the circuit board so that each of the accommodating grooves corresponds to at least one of the lamp bodies.
[0016] In one embodiment, the seat body is formed with a first shoulder structure protruding and extending toward the center of the slot at the slot of the accommodating slot, and the light guide component is formed with a second shoulder structure protruding from the surface of the light guide component, and the first shoulder structure is abutted and matched with the second shoulder structure.
[0017] In one embodiment, the mounting seat further includes an ear seat connected to the seat body, and a locking structure is provided on the ear seat.
[0018] A second objective of the present application is to provide a power supply device, which includes a power supply body and a power display component as described in any one of the above items, wherein the power display component is electrically connected to the power supply body.
[0019] In one embodiment, the power supply device further includes a box, the power supply body is connected to the box; a display surface is formed on the box, the base body is connected to the box, and the light-emitting surface is exposed on the display surface.
[0020] In one embodiment, the light emitting surface is flush with the display surface.
[0021] In one embodiment, when the lamp body is turned off, the light emitting surface and the display surface have the same color.
[0022] The beneficial effects of the power display component and power supply device of the present application compared to the prior art are: in the power display component and power supply device, the light-guiding component and the mounting seat are assembled so that the partition body is plugged into and matched with the plug-in slot on the light-guiding component, and a light-blocking portion is formed at a position of the light-guiding component corresponding to the partition body. The light-blocking portion can form a dark area on the light-emitting surface, thereby forming a light-emitting surface with light-emitting areas and dark areas alternately arranged along a preset direction, so that the amount of power in the power supply body can be judged by the number of light-emitting areas, making the method of judging the power more intuitive.
[0023] In addition, in this component, the light-blocking portion is a part of the light-guiding component, which is formed by plugging and matching the partition body with the plug-in slot, rather than by using a film. This makes the overall consistency of the light-emitting surface of the light-guiding component better, and the light-emitting surface is continuous as a whole. It does not require the attachment of an additional shielding film to achieve the alternating arrangement of the light-emitting area and the dark area. The setting of the dark area is more reliable than the film method, and is not prone to falling off, which is beneficial to improving the service life of the entire component. BRIEF DESCRIPTION OF THE DRAWINGS
[0024] In order to more clearly illustrate the technical solutions of the embodiments of the present application, the following briefly introduces the drawings required for use in the embodiments of the present application or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.
[0025] Figure 1 This is a main view of a power display assembly provided by an embodiment of the present application;
[0026] Figure 2 yes Figure 1 Right view of;
[0027] Figure 3 yes Figure 1 Axonometric drawing of
[0028] Figure 4 This is a schematic diagram of the exploded structure of a power display component provided in an embodiment of the present application;
[0029] Figure 5 yes Figure 1 AA section view in;
[0030] Figure 6 yes Figure 5 Magnified view of position B in the middle;
[0031] Figure 7 yes Figure 5 Schematic diagram of the decomposition structure;
[0032] Figure 8This is a schematic structural diagram of a power supply device provided in an embodiment of the present application;
[0033] Figure 9 yes Figure 8 Enlarged view of the middle C position;
[0034] Figure 10 yes Figure 8 Axonometric view in the rear direction.
[0035] Explanation of the accompanying drawings: 1000, power supply device; 1100, power display component; 1110, mounting seat; 1111, seat body; 11111, accommodating groove; 11112, accommodating space; 11113, first shoulder structure; 1112, partition body; 1113, ear seat; 1114, locking structure; 1120, light-guiding component; 1121, luminous surface; 1122, plug-in slot; 1123, light-blocking portion; 1124, dark area; 1125, raised portion; 1126, second shoulder structure; 1127, luminous area; 1130, lamp assembly; 1131, lamp body; 1132, circuit board; 1200, box body; 1210, display surface; X, preset direction; D, preset distance. DETAILED DESCRIPTION
[0036] The following describes in detail embodiments of the present application, examples of which are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are intended to be used to explain the present application, and should not be construed as limiting the present application.
[0037] In the description of the present application, it should be understood that the terms "length", "width", "upper", "lower", "upward", "vertical", "horizontal", "bottom", "inside", "outside", "inner side", "outer side" and the like indicate orientations or positional relationships based on the orientations or positional relationships shown in the accompanying drawings. They are only for the convenience of describing the present application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they should not be understood as limitations on the present application.
[0038] Furthermore, the terms "first," "second," and the like are used for descriptive purposes only and should not be construed as indicating or implying relative importance or implicitly specifying the number of the technical features being referred to. Thus, a feature specified as "first" or "second" may explicitly or implicitly include one or more of the features. Throughout the description of this application, "plurality" means two or more, unless otherwise specifically defined.
[0039] In this application, unless otherwise expressly specified or limited, terms such as "mounted," "connected," "connect," and "fixed" should be understood in a broad sense. For example, they may refer to fixed connections, detachable connections, or integration; mechanical connections or electrical connections; direct connections or indirect connections through an intermediate medium; and internal connections between two components or interactions between two components. Those skilled in the art will understand the specific meanings of these terms in this application based on specific circumstances.
[0040] In order to make the purpose, technical solutions and advantages of this application more clear, this application is further described in detail below with reference to the accompanying drawings and embodiments.
[0041] See also Figure 1-3 As shown, the embodiment of the present application provides a power display component 1100, which includes a mounting base 1110, a light guide component 1120 and a lamp component 1130; wherein the mounting base 1110 includes a base body 1111 and a plurality of partition bodies 1112 connected to the base body 1111, the base body 1111 is provided with a receiving groove 11111 whose length extends along a preset direction X, and the plurality of partition bodies 1112 are arranged at intervals along the preset direction X to divide the receiving groove 11111 into a plurality of receiving spaces 11112; the light guide component 1120 is extended along the preset direction X, and the light guide component 1120 is accommodated in the receiving groove 11111. In the groove 11111, the light-guiding component 1120 forms a light-emitting surface 1121 at the groove of the accommodating groove 11111; corresponding to each partition body 1112, a plug-in groove 1122 is opened on the light-guiding component 1120, and each partition body 1112 is plugged into each plug-in groove 1122, and a light-blocking portion 1123 is formed between the bottom surface of the plug-in groove 1122 and the light-emitting surface 1121. The light-blocking portion 1123 forms a dark area 1124 on the light-emitting surface 1121 when the light-guiding component 1120 guides light; the lamp assembly 1130 includes a plurality of lamp bodies 1131, and each accommodating space 11112 is correspondingly configured with at least one lamp body 1131.
[0042] Specifically, combined Figure 4 As shown, in the mounting base 1110, the base body 1111 is used to support the light guide component 1120 and the lamp assembly 1130. The base body 1111 is provided with a receiving groove 11111, and the light guide component 1120 can be received in the receiving groove 11111. The receiving groove 11111 is extended along the preset direction X, which means that the notch of the receiving groove 11111 extends along the preset direction X. Correspondingly, the light guide component 1120 is extended along the preset direction X to cooperate with the receiving groove 11111. The light guide component 1120 is formed with a light emitting surface 1121, so that the light emitting surface 1121 is exposed at the notch of the receiving groove 11111.
[0043] The mounting base 1110 further includes a plurality of partitions 1112, which can be fixedly or detachably connected to the base body 1111. The partitions 1112 can also be integrally formed with the base body 1111. The plurality of partitions 1112 are spaced apart within the receiving groove 11111 along a predetermined direction X, so that the receiving groove 11111 is divided into a plurality of receiving spaces 11112 along the predetermined direction X.
[0044] Correspondingly, a plug-in groove 1122 is formed on the light guide component 1120 corresponding to the partition body 1112, so that when the light guide component 1120 is connected to the accommodating groove 11111, each partition body 1112 is correspondingly plugged into each plug-in groove 1122; the end surface of the partition body 1112 inserted into the plug-in groove 1122 and opposite to the groove bottom surface of the plug-in groove 1122 is the top surface, so that the top surface abuts against the groove bottom surface, and a light blocking portion 1123 is formed between the groove bottom surface (or top surface) and the light emitting surface 1121, and the light blocking portion 1123 is formed between the light emitting surface 1121 and the light blocking portion 1123. Reference numeral 23 denotes a portion of light-guiding component 1120, which guides light. Light-blocking portion 1123 is used to form dark areas 1124 on light-emitting surface 1121 when light-guiding component 1120 is guiding light. Dark areas 1124 should be understood as light-blocking portion 1123 transmitting less light than the adjacent portion of light-guiding component 1120 that faces accommodating space 11112. This results in the light-blocking portion 1123 being relatively dark on light-emitting surface 1121, forming dark areas 1124. The portion of light-guiding component 1120 that faces accommodating space 11112 forms light-emitting area 1127 on light-emitting surface 1121. Along a predetermined direction X, multiple dark areas 1124 divide the entire light-emitting surface 1121 into multiple light-emitting areas 1127.
[0045] It can be seen that on the light-emitting surface 1121, along the preset direction X, the light-emitting areas 1127 and the dark areas 1124 are arranged alternately. For example, on the light-emitting surface 1121, five light-emitting areas 1127 are formed along the preset direction X, and a dark area 1124 is formed between two adjacent light-emitting areas 1127. The light-emitting areas 1127 and the dark areas 1124 are arranged alternately. The number of light-emitting areas 1127 corresponds to the amount of electricity. For example, if there are five light-emitting areas 1127, one light-emitting area 1127 represents one-fifth of the electricity. When all five light-emitting areas 1127 are bright, it indicates that the electricity in the power supply body is 80%-100% of the total electricity. When only one light-emitting area 1127 is lit, it indicates that the electricity in the power supply body is less than or equal to 20% of the total current.
[0046] Lamp assembly 1130 is used to emit light, and the light is guided by light guide component 1120 so as to be emitted from light-emitting surface 1121, forming light-emitting area 1127. Lamp assembly 1130 includes multiple lamp bodies 1131, and lamp bodies 1131 can use LED lamp beads. Each accommodating space 11112 is correspondingly configured with at least one lamp body 1131. In other words, at least one lamp body 1131 is arranged corresponding to accommodating groove 11111, for example, so that lamp body 1131 is accommodated in accommodating groove 11111. One or more lamp bodies 1131 can be arranged in accommodating groove 11111, for example, two lamp bodies 1131 are arranged side by side in accommodating groove 11111, spaced apart.
[0047] When working, the power display component 1100 is usually connected to the power supply body to display the amount of power in the power supply body. The amount of power is determined by the number of light-emitting areas 1127 on the light-emitting surface 1121. The preset direction X is the direction in which the light-emitting areas 1127 and the dark areas 1124 are alternately arranged.
[0048] In this embodiment, the light guide component 1120 is assembled with the mounting base 1110 so that the partition body 1112 is plugged into the plug slot 1122 on the light guide component 1120, and a light blocking portion 1123 is formed at a position of the light guide component 1120 corresponding to the partition body 1112. The light blocking portion 1123 can form a dark area 1124 on the light emitting surface 1121, thereby forming the light emitting surface 1121 along the preset direction X. The light emitting areas 1127 and the dark areas 1124 are alternately arranged, so that the amount of electricity of the power supply body can be judged by the number of light emitting areas 1127, thereby making the amount of electricity The judgment method is more intuitive; in addition, in this component, the light-blocking portion 1123 is a part of the light-guiding component 1120, which is formed by plugging and matching the partition body 1112 with the plug-in slot 1122, rather than by using a film. This makes the overall consistency of the light-emitting surface 1121 of the light-guiding component 1120 better, and the light-emitting surface 1121 is continuous as a whole, and does not require the attachment of an additional shielding film to achieve the alternating arrangement of the light-emitting area 1127 and the dark area 1124. The setting of the dark area 1124 is more reliable than the film-sticking method, and is not prone to falling off, etc., which is beneficial to improving the service life of the entire component.
[0049] In one embodiment, the light-guiding component 1120 has a microstructure inside, which is used to limit light from the light-emitting surface 1121 into the receiving groove 11111, so that the light-guiding component 1120 is not transparent from the light-emitting surface 1121 toward the receiving groove 11111.
[0050] Specifically, non-perspective means that when the observer's line of sight moves from the outside of the light-emitting surface 1121 to the inside of the receiving groove 11111, the internal structure of the receiving groove 11111 cannot be observed. For example, the light-guiding component 1120 is a light guide plate, which is an optical component that can guide light from the lamp body 1131 to the light-emitting surface 1121. The light guide plate is usually made of materials such as plastic or glass, and has a microscopic structure inside, such as a pyramid or optical fiber, to achieve multiple reflections and refractions of light, thereby guiding the light to propagate along a specific path. However, when observed in the opposite direction, the light cannot propagate, so that the observer cannot see the internal structure of the receiving groove 11111 from the outside, so that when the lamp body 1131 is not emitting light, the entire light-emitting surface 1121 has an opaque consistency, and the appearance is more consistent and beautiful.
[0051] The light-guiding component 1120 can also be made of a semi-transparent material. For example, the semi-transparent material can be a composite material, which can be made by combining materials with different transmissivities. For example, a material with high transmissivity can be mixed with a material with low transmissivity, or microscopic or nanoscale channels can be introduced into the material to guide light from one side of the receiving groove 11111 to the light-emitting surface 1121. However, light outside the light-emitting surface 1121 cannot enter the receiving groove 11111. As a result, the light-emitting surface 1121 forms an opaque, more consistent, continuous surface, thereby improving the visual effect for the observer.
[0052] In this embodiment, a light-guiding component 1120 with a microstructure is used, so that when the component is not lit, the observer cannot observe the internal structure of the component from the light-emitting surface 1121, so that the consistency of the appearance of the light-emitting surface 1121 when it is illuminated is improved, thereby enhancing the visual effect of the observer.
[0053] In one embodiment, referring to Figure 2 and Figure 6 As shown, the distance between the top surface of the partition body 1112 and the light emitting surface 1121 is a preset distance D, and the range of the preset distance D is 0.5 mm-2 mm.
[0054] Specifically, the portion between the top surface of each partition body 1112 and the light-emitting surface 1121 is the light-blocking portion 1123. The preset distance D can be understood as the thickness of the light-blocking portion 1123. The smaller the thickness of the light-blocking portion 1123, the better the light-blocking effect. The light-blocking portion is not completely opaque, but the amount of light transmittance is small. When the thickness is within the range of 0.5mm-2mm, when the lamp body 1131 is lit, the light-blocking portion 1123 forms a dark area 1124 on the light-emitting surface 1121 in terms of visual effect.
[0055] The top surface of the partition body 1112 refers to the surface of the partition body 1112 inserted into the plug-in slot 1122 and opposite to the bottom surface of the plug-in slot 1122. If the bottom surface of the plug-in slot 1122 is a plane, then the top surface is a plane parallel to the bottom surface of the slot, so the preset distance D is the vertical distance between the top surface and the bottom surface of the plug-in slot 1122.
[0056] The preset distance D ranges from 0.5 mm to 2 mm. That is, the preset distance D can be any value between 0.5 mm and 2 mm, for example, 0.5 mm, 1.0 mm, 1.5 mm, 2 mm, etc. The smaller the preset distance D, the more significant the light-blocking effect. Considering the structural strength of the light-blocking portion 1123, as well as the difficulty and cost of manufacturing, the thickness of the light-blocking portion 1123 should preferably be no less than 0.5 mm.
[0057] In this embodiment, by adjusting the distance between the top surface of the partition body 1112 and the light-emitting surface 1121, the light-blocking effect or light transmittance of the light-blocking portion 1123 is adjusted, so that the dark area 1124 and the light-emitting area 1127 can be distinguished, and the display effect of the dark area 1124 can be controlled, so that the observer can observe the light-emitting area 1127 and the dark area 1124 more clearly.
[0058] In one embodiment, referring to Figure 7 As shown, the seat body 1111 and the partition body 1112 are an integrally formed structure.
[0059] Specifically, the seat body 1111 may adopt a solid structure. For example, the seat body 1111 may adopt a rectangular parallelepiped structure, the length direction of the rectangular parallelepiped is the preset direction X, and the accommodating groove 11111 is opened along the preset direction X. The partition body 1112 and the seat body 1111 are an integrally formed structure. That is, when the seat body 1111 is prepared, the partition body 1112 is also prepared and formed at the same time. For example, the mounting seat 1110 is formed by casting, and the seat body 1111 and the partition body 1112 are simultaneously prepared and formed through a mold.
[0060] In this embodiment, the seat body 1111 and the partition body 1112 are prepared in an integrated manner, which is beneficial to improving the connection strength between the seat body 1111 and the partition body 1112. The mounting seat 1110 is formed into a module as a whole, reducing the number of parts, facilitating installation and disassembly with other structures, and making it more convenient to use.
[0061] In one embodiment, the seat body 1111 and the partition body 1112 are detachably connected.
[0062] Specifically, the detachable connection methods include bolt connection, riveting, plug connection, etc. For example, a plurality of limiting grooves spaced along a preset direction X can be provided on the wall of the receiving groove 11111 of the seat body 1111, so that the partition body 1112 can be inserted into the limiting grooves, thereby limiting and fixing the partition body 1112. For another example, the seat body 1111 and the partition body 1112 are connected by a bolt assembly, so that the partition body 1112 can be easily removed from the seat body 1111 for easy maintenance.
[0063] In this example, the seat body 1111 and the partition body 1112 are connected in a detachable manner, so that the structure of the mounting seat 1110 is more flexible and it is convenient to repair and replace the partition body 1112.
[0064] In one embodiment, the mounting base 1110 and the light guide component 1120 are an integrally formed structure.
[0065] Specifically, the mounting base 1110 can be made of metal or non-metallic materials. For example, the mounting base 1110 can be made of resin material, for example, the mounting base 1110 can be made of plastic. For another example, the mounting base 1110 can be made of light metal, such as aluminum, which helps to reduce the overall weight of the mounting base 1110.
[0066] The light guide component 1120 can be made of plastic, glass, fiber, ceramic or composite materials. For example, the light guide component 1120 is made of optical grade plastic, such as polymethyl methacrylate (PMMA), polycarbonate (PC), polystyrene (PS), etc. The light guide component 1120 can be formed by injection molding, blow molding and other processes. For example, the mounting base 1110 is placed in a mold, and the light guide component 1120 is formed on the mounting base 1110 by injection molding. For another example, the glass can be special glass, such as optical glass, which has good light transmittance and stability and can be used to prepare light guide plates. For another example, ceramic materials, especially ceramics with transparent or translucent properties, can be made by sintering process. For another example, composite materials, materials composed of two or more different materials, such as composite materials of plastic and glass fiber, can provide better mechanical properties and light guiding properties.
[0067] In this example, the mounting base 1110 and the light-guiding component 1120 are integrally formed to form a combined modular structure, which is beneficial to improving the overall rigidity and strength of the structure. The mounting base 1110 and the light-guiding component 1120 are not easily damaged as a whole, and can be installed and disassembled as a whole, which is beneficial to improving the convenience of installation and disassembly.
[0068] In one embodiment, referring to Figure 1 and Figure 5As shown, the light guide component 1120 forms a protrusion 1125 at the notch of the accommodating groove 11111 , and the protrusion 1125 extends outward from the notch of the accommodating groove 11111 in a direction away from the lamp body 1131 , and the light-emitting surface 1121 is located on the protruding end surface of the protrusion 1125 .
[0069] Specifically, the raised portion 1125 is a portion of the light guide component 1120. The arrangement of the raised portion 1125 causes the light guide component 1120 to protrude outward at the notch of the receiving groove 11111. The raised portion 1125 is located outside the notch. For example, the mounting base 1110 has a mounting surface, and the receiving groove 11111 is provided on the mounting surface. That is, the notch of the receiving groove 11111 is located on the mounting surface. After the light guide component 1120 is inserted into the receiving groove 11111, the raised portion 1125 protrudes from the mounting surface. The raised portion 1125 forms a raised end surface at the raised end, and this raised end surface is the light-emitting surface 1121.
[0070] In this example, the light-guiding component 1120 forms a raised portion 1125 on the outside of the seat body 1111, thereby facilitating the assembly of the raised portion 1125 with the external box body 1200 (described below), so that the raised end surface of the raised portion 1125 (i.e., the light-emitting surface 1121) can be flush with the surface of the box body 1200; in addition, the provision of the raised portion 1125 can facilitate the positioning of the light-guiding component 1120 and the external box body 1200, thereby improving the convenience of assembling the light-guiding component 1120 and the box body 1200.
[0071] In one embodiment, referring to Figure 1-5 As shown, the lamp assembly 1130 also includes a circuit board 1132 connected to the base body 1111, the lamp body 1131 is electrically connected to the circuit board 1132, and the bottom surface of the accommodating groove 11111 passes through the circuit board 1132, so that each accommodating groove 11111 corresponds to at least one lamp body 1131.
[0072] Specifically, lamp assembly 1130 includes a lamp body 1131 and a circuit board 1132. Lamp body 1131 is electrically connected to circuit board 1132, which supports lamp body 1131. Circuit board 1132 can also be connected to other electronic components to control lamp body 1131. Circuit board 1132 can be connected to base body 1111. The connection between circuit board 1132 and base body 1111 can be fixed or detachable.
[0073] Since the lamp body 1131 is located in the direction of the bottom surface of the receiving groove 11111, and similarly, the circuit board 1132 is also located in the direction of the bottom surface of the receiving groove 11111, in order for the light emitted by the lamp body 1131 to be able to irradiate the receiving groove 11111, it is necessary to make the bottom surface of the receiving groove 11111 pass through to the position of the circuit board 1132, so that the light emitted by the lamp body 1131 can enter the receiving groove 11111, and the lamp body 1131 can also be positioned in the receiving groove 11111, thereby shortening the path length of the light emitted by the lamp body 1131 to reach the light guide component 1120, thereby improving the light intensity entering the light guide component 1120.
[0074] According to the requirements of light intensity, and considering the size of the lamp body 1131 and the size of the receiving groove 11111, one or more lamp bodies 1131 can be matched and set in the receiving groove 11111. For example, two lamp bodies 1131 set at intervals are matched and set in a receiving groove 11111, and the light emission direction of the lamp body 1131 is all toward the notch position of the receiving groove 11111.
[0075] In this example, the circuit board 1132 is provided to support the lamp body 1131 , which facilitates the installation and arrangement of the lamp body 1131 and helps to improve the convenience of connecting the lamp assembly 1130 with the mounting base 1110 .
[0076] In one embodiment, referring to Figure 7 As shown, the seat body 1111 is formed with a first shoulder structure 11113 protruding and extending toward the center of the slot at the slot of the accommodating groove 11111, and the light guide component 1120 is formed with a second shoulder structure 1126 protruding from the surface of the light guide component 1120, and the first shoulder structure 11113 and the second shoulder structure 1126 are abutted and matched.
[0077] In this example, the first shoulder structure 11113 extends from the slot of the accommodating groove 11111 toward the center of the slot, thereby forming a boss at the position of the slot; the second shoulder structure 1126 is located at the root position of the raised portion 1125, and the first shoulder structure 11113 and the second shoulder structure 1126 are abutted and matched, thereby playing a role in positioning and limiting the light-guiding component 1120 and the seat body 1111, and the raised portion 1125 protrudes outward from the slot position of the accommodating groove 11111.
[0078] In one embodiment, referring to Figure 1-5 and Figure 6 As shown, the mounting base 1110 further includes an ear base 1113 connected to the base body 1111 , and a locking structure 1114 is provided on the ear base 1113 .
[0079] Specifically, the outer portion of the ear seat 1113 can be plate-shaped. The ear seat 1113 can be a structural component of the base body 1111, or the ear seat 1113 can be fixedly or detachably connected to the base body 1111. The ear seat 1113 is used to assemble the base body 1111 with external components (such as the housing 1200). Multiple ear seats 1113 can be provided. For example, two ear seats 1113 can be connected to the base body 1111, with the two ear seats 1113 located at opposite ends of the preset direction X.
[0080] The locking structure 1114 may be a bolt assembly, etc. Correspondingly, a through hole or a threaded hole may be provided on the ear seat 1113 , and the bolt assembly is plugged into or threadedly connected to the ear seat 1113 and is threadedly connected to the box body 1200 .
[0081] In this example, an ear seat 1113 is provided on the seat body 1111 and a first locking assembly is provided to facilitate connection between the seat body 1111 and external components, thereby facilitating installation and removal of the power display assembly 1100 and external components.
[0082] The present application also provides a power supply device 1000, referring to Figure 8-10 As shown, the power supply device 1000 includes a power supply body (not shown) and the power display component 1100 in the above embodiment, and the power display component 1100 is electrically connected to the power supply body.
[0083] Specifically, a power source body refers to a device or system capable of providing electrical energy. The power source body can convert one form of energy into electrical energy. The power source body can be used to release electrical energy or to store electrical energy. The power level display component 1100 is electrically connected to the power source body, so that the power level display component 1100 can display the amount of electrical energy stored in the power source body. The amount of electrical energy in the power source body can be determined by the number of luminous areas 1127 on the luminous surface 1121.
[0084] In this example, the power display component 1100 is electrically connected to the power supply body, so that the light-emitting surface 1121 in the power display component 1100 forms light-emitting areas 1127 and dark areas 1124 arranged alternately along the preset direction X, so that the amount of power in the power supply body can be judged by the number of light-emitting areas 1127, making the method of judging the power more intuitive; the setting of the dark area 1124 is more reliable than the film-sticking method, and is not prone to falling off, which is beneficial to improving the service life of the entire component.
[0085] In one embodiment, referring to Figure 8 and Figure 9As shown, the power supply device 1000 further includes a box 1200 , the power supply body is connected to the box 1200 ; a display surface 1210 is formed on the box 1200 , the base body 1111 is connected to the box 1200 , and the light-emitting surface 1121 is exposed on the display surface 1210 .
[0086] Specifically, the box body 1200 may adopt a shell plate structure, and the power supply body is connected to the box body 1200 . For example, a cavity is formed in the box body 1200 , and the power supply body is accommodated in the cavity of the box body 1200 .
[0087] A display surface 1210 is formed on the housing 1200. Display surface 1210 can be understood as a side surface of the housing 1200, on which structures such as a display screen and lamp body 1131 can be mounted. Display surface 1210 can serve as a primary viewing surface of the power supply device 1000. The mounting base 1110 of the power display assembly 1100 is fixedly or detachably connected to the housing 1200. A through-slot structure is defined in display surface 1210 of the housing 1200, thereby exposing the light-emitting surface 1121 of the light-guiding component 1120 at the notch of the through-slot structure, thereby making the light-emitting surface 1121 easily visible.
[0088] In this example, the box 1200 is used to protect the mounting base 1110, the light-guiding component 1120, and the lamp assembly 1130 in the power supply body and the power display component 1100. The light-emitting surface 1121 is exposed on the display surface 1210, making it easier for the observer to observe the number of light-emitting areas 1127 and then judge the amount of power in the power supply body, which is more intuitive and clear.
[0089] In one embodiment, referring to Figure 8 and Figure 9 As shown, the light emitting surface 1121 is flush with the display surface 1210 .
[0090] In this example, the display surface 1210 can be a plane, the seat body 1111 is installed on the box body 1200, and the light-guiding component 1120 is inserted into the through groove of the box body 1200, so that the light-emitting surface 1121 of the light-guiding component 1120 is flush with the display surface 1210 of the box body 1200, thereby improving the integrity of the surface of the box body 1200 and making the appearance more beautiful.
[0091] In one embodiment, when the lamp body 1131 is turned off, the light emitting surface 1121 and the display surface 1210 have the same color.
[0092] It should be pointed out that the same color includes visually observable colors, as well as texture structures, etc. When the lamp body 1131 is turned off, there is no obvious visual difference between the light-emitting surface 1121 and the display surface 1210. Therefore, when the lamp body 1131 is turned off, the display surface 1210 of the box 1200 presents overall consistency. Only when the lamp body 1131 is lit, the light-emitting area 1127 and the dark area 1124 will appear, which is beneficial to improving the consistency of the appearance of the power supply device 1000 when it is not working.
[0093] The above are merely preferred embodiments of the present application and only specifically describe the technical principles of the present application. These descriptions are intended only to explain the principles of the present application and should not be construed in any way as limiting the scope of protection of the present application. Based on the explanations herein, any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present application, as well as other specific implementations of the present application that can be conceived by those skilled in the art without inventive effort, shall be included within the scope of protection of the present application.
Claims
1. A power display component (1100), characterized in that: include: The mounting seat (1110) comprises a seat body (1111) and a plurality of partition bodies (1112) connected to the seat body (1111); the seat body (1111) is provided with a receiving groove (11111) whose length extends along a preset direction (X); the plurality of partition bodies (1112) are arranged at intervals along the preset direction (X) to divide the receiving groove (11111) into a plurality of receiving spaces (11112); A light-guiding component (1120) is provided extending along a preset direction (X), the light-guiding component (1120) being accommodated in the accommodating groove (11111), the light-guiding component (1120) forming a light-emitting surface (1121) at the notch of the accommodating groove (11111); corresponding to each of the partition bodies (1112), a plug-in groove (1122) is provided on the light-guiding component (1120), each of the partition bodies (1112) is plugged into and matched with each of the plug-in grooves (1122), a light-blocking portion (1123) is formed between the bottom surface of the plug-in groove (1122) and the light-emitting surface (1121), and the light-blocking portion (1123) forms a dark area (1124) on the light-emitting surface when the light-guiding component (1120) guides light; The lamp assembly (1130) includes a plurality of lamp bodies (1131), and each of the accommodating spaces (11112) is correspondingly configured with at least one of the lamp bodies (1131).
2. The power display component (1100) according to claim 1, characterized in that: The light-guiding component has a microstructure inside, and the microstructure is used to limit light from entering the accommodating groove (11111) from the light-emitting surface (1121).
3. The power display component (1100) according to claim 1, characterized in that: The top surface of each partition body (1112) abuts against the bottom surface of the insertion slot (1122), and the distance between the top surface of the partition body (1112) and the light-emitting surface (1121) is a preset distance (D), and the range of the preset distance (D) is 0.5mm-2mm.
4. The power display component (1100) according to claim 1, characterized in that: The seat body (1111) and the partition body (1112) are an integrally formed structure; or The seat body (1111) and the partition body (1112) are detachably connected.
5. The power display component (1100) according to any one of claims 1 to 4, characterized in that: The mounting seat (1110) and the light guide component (1120) are an integrally formed structure.
6. The power display component (1100) according to any one of claims 1 to 4, characterized in that: The light-guiding component (1120) forms a raised portion (1125) at the notch of the accommodating groove (11111), and the raised portion (1125) extends outward from the notch of the accommodating groove (11111) in a direction away from the lamp body (1131), and the light-emitting surface (1121) is located on the raised end surface of the raised portion (1125).
7. The power display component (1100) according to any one of claims 1 to 4, characterized in that: The lamp assembly (1130) further includes a circuit board (1132) connected to the seat body (1111); the lamp body (1131) is electrically connected to the circuit board (1132); and the bottom surface of the accommodating groove (11111) passes through the circuit board (1132), so that each accommodating groove (11111) corresponds to at least one lamp body (1131).
8. The power display component (1100) according to any one of claims 1 to 4, characterized in that: The seat body (1111) is provided with a first shoulder structure (11113) protruding and extending toward the center of the slot opening of the accommodating slot (11111), and the light guide component (1120) is provided with a second shoulder structure (1126) protruding from the surface of the light guide component (1120), and the first shoulder structure (11113) and the second shoulder structure (1126) are in abutment with each other.
9. The power display component (1100) according to any one of claims 1 to 4, characterized in that: The mounting seat (1110) further comprises an ear seat (1113) connected to the seat body (1111), and a locking structure (1114) is provided on the ear seat (1113).
10. A power supply device (1000), characterized in that: The power supply device (1000) comprises a power supply body and a power display component (1100) according to any one of claims 1 to 9, wherein the power display component (1100) is electrically connected to the power supply body.
11. The power supply device (1000) according to claim 10, characterized in that: The power supply device (1000) further comprises a box (1200), the power supply body being connected to the box (1200); a display surface being formed on the box (1200), the seat body (1111) being connected to the box, and the light-emitting surface (1121) being exposed on the display surface (1210).
12. The power supply device (1000) according to claim 11, characterized in that: The light-emitting surface (1121) is arranged flush with the display surface.
13. The power supply device (1000) according to claim 11 or 12, characterized in that: When the lamp body (1131) is closed, the light-emitting surface (1121) has the same color as the display surface.