Mirror cabinet
By designing movable light emitting parts in the mirror cabinet, the problem of narrow lighting adjustment range of existing bathroom cabinets is solved, and rich lighting modes and higher user experience are achieved.
Patent Information
- Application Number
- CN202421741349.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-22
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2034-07-22
AI Technical Summary
The existing bathroom cabinet cannot meet the diverse lighting needs of users, and the adjustment range is narrow, which affects the user experience.
A mirror cabinet is designed, wherein the light emitting member is arranged in the receiving groove, and moves between the first position and the second position through external force, adjust the length of the light emitting surface extending out of the receiving groove to change the light density, and provide a rich light mode in conjunction with the brightness adjustment of the light emitting member itself.
It realizes a wider adjustment of the overall lighting brightness of the mirror cabinet, provides multiple lighting modes to meet different user needs and improve user experience.
Smart Images

Figure CN222864771U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of furniture, in particular to a mirror cabinet. Background Art
[0002] Bathroom cabinets are essential furniture in most households. In the related art, users usually use bathroom cabinets for makeup, skin care, washing and other operations. However, different operations such as makeup and skin care have different requirements for light brightness. Current bathroom cabinets mainly adjust the brightness of the light source, but the adjustment range is narrow and the number of lighting modes that can be provided is small. It cannot meet the diverse lighting needs of users, affecting the user experience. Utility Model Content
[0003] The utility model aims to solve at least one of the technical problems existing in the prior art. To this end, the utility model provides a mirror cabinet that can provide a variety of lighting modes to meet the use needs of users.
[0004] The mirror cabinet according to the embodiment of the utility model comprises:
[0005] A cabinet assembly comprises a mirror surface and a receiving groove, wherein an opening of the receiving groove and the mirror surface face the same direction; and
[0006] The light-emitting component includes a light-emitting surface, and the light-emitting component is movably arranged in the receiving groove. The light-emitting component can move and switch between a first position and a second position under the action of an external force. When in the first position, the light-emitting surface is located in the receiving groove, and when in the second position, at least a part of the light-emitting surface is located outside the receiving groove.
[0007] The mirror cabinet according to the embodiment of the utility model has at least the following beneficial effects: by movably arranging the light-emitting member in the accommodating groove, the light-emitting member can move between the first position and the second position under the action of external force, when the light-emitting member is in the first position, the light-emitting surface is entirely located in the accommodating groove, and when the light-emitting member is in the second position, at least part of the light-emitting surface is located outside the accommodating groove, then by adjusting the length of the light-emitting surface extending out of the accommodating groove, the light density irradiated by the light-emitting member to the outside of the accommodating groove can be adjusted, and at the same time, by coordinating with the brightness adjustment of the light-emitting member itself, the overall light brightness of the mirror cabinet can be adjusted to a wider range, and a rich lighting mode can be provided, so that the user can adjust the light-emitting member according to their own needs so that the mirror cabinet provides a corresponding lighting mode, which can meet the user's usage needs and improve the user's usage experience.
[0008] According to some embodiments of the present invention, the surface where the light-emitting surface is located intersects with the mirror surface, or the light-emitting surface is parallel to the mirror surface.
[0009] According to some embodiments of the utility model, the light-emitting element can move under the action of an external force and drive the light-emitting surface to change its posture relative to the mirror surface. When in the first position, the light-emitting surface is parallel to the mirror surface; when in the second position, the surface where the light-emitting surface is located intersects with the mirror surface; or,
[0010] When in the first position, the surface where the light-emitting surface is located intersects with the mirror surface at a first angle; when in the second position, the surface where the light-emitting surface is located intersects with the mirror surface at a second angle.
[0011] According to some embodiments of the present invention, the mirror surface includes a first side and a second side facing away from each other along a first direction;
[0012] The number of the light-emitting element is one, and the light-emitting element is arranged on the first side or the second side;
[0013] Alternatively, the number of the light-emitting components is two, one of which is disposed on the first side, and the other of which is disposed on the second side.
[0014] According to some embodiments of the present invention, the mirror surface includes a plurality of side edges, the number of the light-emitting elements is multiple, the number of the light-emitting elements is the same as the number of the side edges, and each of the light-emitting elements is arranged on one side of one of the side edges.
[0015] According to some embodiments of the present invention, the mirror cabinet includes a first lighting mode, a second lighting mode, a third lighting mode, and a fourth lighting mode;
[0016] In the first illumination mode, all the light emitting elements move from the first position toward the second position, so that the entire light emitting surface of each of the light emitting elements is located outside the receiving groove;
[0017] In the second illumination mode, some of the light emitting elements move from the first position toward the second position so that the entire light emitting surface of some of the light emitting elements is located outside the receiving groove, and the number of some of the light emitting elements is greater than one;
[0018] In the third illumination mode, one of the light emitting elements moves from the first position toward the second position so that the entire light emitting surface of one of the light emitting elements is located outside the receiving groove;
[0019] In the fourth illumination mode, one of the light-emitting elements moves from the first position toward the second position, so that a portion of the light-emitting surface of one of the light-emitting elements is located outside the receiving groove.
[0020] According to some embodiments of the present invention, the light-emitting component is slidably disposed in the accommodating groove, and the mirror cabinet further includes a driving mechanism, which is connected to the light-emitting component to drive the light-emitting component to slide and switch between the first position and the second position.
[0021] According to some embodiments of the present utility model, the driving mechanism comprises:
[0022] A transmission member is disposed in the receiving groove, and the transmission member is in transmission connection with the light-emitting member; and
[0023] A driving member is connected to the transmission member, and is used to drive the transmission member to drive the light-emitting member to slide relative to the cabinet assembly.
[0024] According to some embodiments of the present invention, the cabinet assembly includes:
[0025] A cabinet body is provided with the mirror surface, and the cabinet body further comprises a side wall located at a side edge of the mirror surface; and
[0026] The protective cover is connected to the side wall, and the protective cover is provided with the receiving groove, or the protective cover and the side wall are combined to form the receiving groove.
[0027] According to some embodiments of the present invention, the cabinet assembly further includes a shielding member, which is movably disposed at the opening of the accommodating groove to cover or expose the accommodating groove.
[0028] Additional aspects and advantages of the present invention will be given in part in the following description, and in part will become apparent from the following description, or will be learned through the practice of the present invention. BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The present invention is further described below with reference to the accompanying drawings and embodiments, wherein:
[0030] Figure 1 This is a schematic diagram of a first state of a mirror cabinet according to an embodiment of the utility model;
[0031] Figure 2 for Figure 1 A cross-sectional view of the middle mirror cabinet in its current state;
[0032] Figure 3 This is a schematic diagram of a light emitting element in a first position according to an embodiment of the utility model;
[0033] Figure 4 This is a schematic diagram of a state where the light-emitting element of an embodiment of the utility model is in the second position;
[0034] Figure 5It is a front view of a partial structure of a mirror cabinet according to an embodiment of the utility model;
[0035] Figure 6 This is a schematic diagram of a mirror cabinet in a second lighting mode according to an embodiment of the utility model;
[0036] Figure 7 for Figure 6 A cross-sectional view of the middle mirror cabinet in its current state;
[0037] Figure 8 This is a schematic diagram of a light emitting element in a first position according to an embodiment of the utility model;
[0038] Fig. 9 This is a schematic diagram of a state where the light-emitting element of an embodiment of the utility model is in the second position;
[0039] Fig.10 This is a schematic diagram of a mirror cabinet in a first lighting mode according to an embodiment of the utility model;
[0040] Fig.11 for Fig.10 A cross-sectional view of the middle mirror cabinet in its current state;
[0041] Fig.12 This is a light simulation diagram of the mirror cabinet in the first lighting mode according to an embodiment of the utility model;
[0042] Fig.13 This is a light simulation diagram of the mirror cabinet in the second lighting mode according to an embodiment of the utility model;
[0043] Fig.14 This is a schematic diagram of a mirror cabinet in a third lighting mode according to an embodiment of the utility model;
[0044] Fig.15 for Fig.14 A cross-sectional view of the middle mirror cabinet in its current state;
[0045] Fig.16 This is a light simulation diagram of the mirror cabinet in the third lighting mode according to an embodiment of the utility model;
[0046] Fig.17 is a cross-sectional view of the mirror cabinet of an embodiment of the utility model in a fourth lighting mode;
[0047] Fig.18 This is a light simulation diagram of the mirror cabinet in the fourth lighting mode according to an embodiment of the utility model.
[0048] Reference numerals:
[0049] Mirror cabinet 10; cabinet assembly 100; first side 101; second side 102; third side 103; fourth side 104;
[0050] Mirror surface 100a; receiving groove 100b; cabinet 110; cabinet body 111; cabinet door 112; protective cover 120; slide groove 121;
[0051] Shielding member 130; light emitting member 200; light emitting surface 210; first light emitting member 201; second light emitting member 202;
[0052] A third light emitting element 203 ; and a fourth light emitting element 204 . DETAILED DESCRIPTION
[0053] The embodiments of the present invention are described in detail below, and examples of the embodiments 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 only used to explain the present invention, and cannot be understood as limiting the present invention.
[0054] In the description of the present invention, it should be understood that descriptions involving orientation, such as up, down, front, back, left, right, etc., indicating orientations or positional relationships, are based on the orientations or positional relationships shown in the accompanying drawings, and are only for the convenience of describing the present invention 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, and therefore cannot be understood as a limitation on the present invention.
[0055] In the description of the present utility model, "several" means more than one, "many" means more than two, "greater than", "less than", "exceed" etc. are understood to exclude the number itself, and "above", "below", "within" etc. are understood to include the number itself. If there is a description of "first" or "second", it is only used for the purpose of distinguishing the technical features, and cannot be understood as indicating or implying the relative importance or implicitly indicating the number of the indicated technical features or implicitly indicating the order of the indicated technical features.
[0056] In the description of the present invention, unless otherwise clearly defined, terms such as setting, installing, connecting, etc. should be understood in a broad sense, and technicians in the relevant technical field can reasonably determine the specific meanings of the above terms in the present invention based on the specific content of the technical solution.
[0057] In the description of the utility model, the description with reference to the terms "one embodiment", "some embodiments", "illustrative embodiments", "examples", "specific examples", or "some examples" means that the specific features, structures, materials or characteristics described in conjunction with the embodiment or example are included in at least one embodiment or example of the utility model. In this specification, the schematic representation of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any one or more embodiments or examples in a suitable manner.
[0058] The present application provides a mirror cabinet, which can be used as a bathroom cabinet, a dressing cabinet, a clothing cabinet, etc. The following will mainly take the bathroom cabinet as an example for detailed description.
[0059] Please refer to Figure 1 and Figure 2 , Figure 1 This is a schematic diagram of a first state of a mirror cabinet according to an embodiment of the utility model. Figure 2 for Figure 1 The mirror cabinet 10 comprises a cabinet assembly 100 and a light emitting element 200 .
[0060] The cabinet assembly 100 includes a mirror surface 100a. It is understandable that the mirror surface 100a has a high reflectivity and a strong ability to reflect light, and can reflect people and objects in the outside world onto the mirror surface 100a. Among them, the cabinet assembly 100 includes a cabinet 110, and the mirror surface 100a can be formed by the cabinet 110 itself, for example, by grinding and polishing the surface of the cabinet 110 to have a very small surface roughness, so that the surface of the cabinet 110 can achieve the reflection of the mirror surface 100a. The mirror surface 100a can also be formed by other reflective structures installed on the cabinet 110, for example, a reflective film can be pasted on the surface of the cabinet 110.
[0061] In one embodiment, the cabinet assembly 100 includes a cabinet 110 and a reflector mounted on the surface of the cabinet 110, and the side of the reflector facing away from the cabinet 110 forms the mirror surface 100a. Specifically, the cabinet 110 may include a cabinet body 111 and a cabinet door 112, a receiving cavity for storing items is provided in the cabinet body 111, and the receiving cavity may be divided into a plurality of small storage cavities by a partition, the cabinet door 112 is movably mounted on the cabinet body 111 to cover or expose the receiving cavity, and the reflector is mounted on the surface of the cabinet door 112 facing away from the receiving cavity.
[0062] It can be understood that the light-emitting component 200 is used to emit light in front of the mirror 100a. For example, when a user adjusts his or her appearance through the mirror 100a under dim light conditions, the light-emitting component 200 is controlled to emit light, and the light emitted by the light-emitting component 200 is irradiated onto the user, thereby enhancing the brightness of the image reflected on the mirror 100a, which can be clearly displayed, so that the user can adjust his or her appearance.
[0063] In the related art, users usually use bathroom cabinets for makeup, skin care, washing and other operations. Different operations such as makeup and skin care have different requirements for light brightness. Current bathroom cabinets mainly adjust the brightness of the light source, and the adjustment range is narrow. Only a few lighting modes can be provided, which cannot meet the user's usage needs.
[0064] In order to solve the above problems, in the embodiment of the present utility model, reference is made to Figure 2As shown, the cabinet assembly 100 also includes a receiving groove 100b, and the light-emitting member 200 is movably arranged in the receiving groove 100b. The opening of the receiving groove 100b faces the same direction as the mirror surface 100a, so that the light emitted by the light-emitting member 200 can be irradiated on the person or object in front of the mirror surface 100a. Among them, the light-emitting member 200 can be slidably arranged in the receiving groove 100b, or can be rotatably arranged in the receiving groove 100b, so that the light-emitting member 200 can move relative to the receiving groove 100b under the action of external force.
[0065] The light emitting element 200 can be switched between the first position and the second position by an external force. Figure 3 and Figure 4 , Figure 3 This is a schematic diagram of a light emitting element in a first position according to an embodiment of the utility model. Figure 4 The schematic diagram of the state of the light-emitting component in the second position of one embodiment of the utility model. The light-emitting component 200 includes a light-emitting surface 210. When in the first position, the light-emitting surface 210 is entirely located in the receiving groove 100b; when in the second position, at least a portion of the light-emitting surface 210 is located outside the receiving groove 100b. It can be understood that at least a portion of the light-emitting surface 210 is located outside the receiving groove 100b means that when the light-emitting component 200 is in the second position, the entire light-emitting surface 210 may be located outside the receiving groove 100b, or a portion of the light-emitting surface 210 may be located outside the receiving groove 100b. In one embodiment, when the light-emitting component 200 is in the second position, the entire light-emitting surface 210 is located outside the receiving groove 100b.
[0066] It can also be understood that the movement and switching between the first position and the second position of the light emitting member 200 by the external force is not limited to the first position or the second position, and the light emitting member 200 can be located at the first position, the second position, or any position between the first position and the second position. For example, when the entire light emitting surface 210 of the light emitting member 200 is located outside the receiving groove 100b when the light emitting member 200 is in the second position, the light emitting member 200 can be moved to the third position by the external force, and the length of the light emitting surface 210 extending outside the receiving groove 100b in the third position accounts for 50% of the total length of the light emitting surface 210, or the light emitting member 200 can be moved to the fourth position by the external force, and the length of the light emitting surface 210 extending outside the receiving groove 100b in the fourth position accounts for 20% of the total length of the light emitting surface 210, and so on.
[0067] Specifically, in the first position, if Figure 3As shown, the entire light-emitting surface 210 is located in the receiving groove 100b. If the light-emitting element 200 emits light in the receiving groove 100b, at least a portion of the light emitted outward from the light-emitting surface 210 will be blocked by the groove wall of the receiving groove 100b, and a small portion of the light emitted by the light-emitting element 200 will be irradiated outside the receiving groove 100b. In the second position, at least a portion of the light-emitting surface 210 is located outside the receiving groove 100b. Figure 4 As shown, when part of the light-emitting surface 210 is located outside the receiving groove 100b, the blocking effect of the groove wall of the receiving groove 100b on the light emitted by the light-emitting component 200 is reduced, so that the light emitted by the light-emitting component 200 to the outside of the receiving groove 100b increases, and as the length of the light-emitting surface 210 extending outside the receiving groove 100b increases, the light emitted by the light-emitting surface 210 to the outside of the receiving groove 100b increases. When the entire light-emitting surface 210 is located outside the receiving groove 100b, all the light emitted by the light-emitting surface 210 will not be blocked by the groove wall of the receiving groove 100b, and can be fully irradiated to the outside of the receiving groove 100b. Then, by adjusting the length of the light-emitting surface 210 located outside the receiving groove 100b, the light density of the light-emitting component 200 irradiating to the outside of the receiving groove 100b can be changed. At the same time, in conjunction with the brightness adjustment of the light-emitting component 200 itself, a wider range of adjustment of the overall light brightness of the mirror cabinet 10 can be achieved, and a variety of lighting modes can be provided for users to meet the user's usage needs.
[0068] The mirror cabinet 10 provided by the embodiment of the utility model has a light-emitting component 200 movably arranged in the receiving groove 100b, and the light-emitting component 200 can move between a first position and a second position under the action of an external force. When the light-emitting component 200 is in the first position, the light-emitting surface 210 is entirely located in the receiving groove 100b. When the light-emitting component 200 is in the second position, at least a portion of the light-emitting surface 210 is located outside the receiving groove 100b. Then, by adjusting the length of the light-emitting surface 210 extending out of the receiving groove 100b, the light density irradiated by the light-emitting component 200 to the outside of the receiving groove 100b can be adjusted. At the same time, by coordinating the brightness adjustment of the light-emitting component 200 itself, the overall light brightness of the mirror cabinet 10 can be adjusted to a wider range, and a rich lighting mode can be provided, so that the user can adjust the light-emitting component 200 according to their own needs so that the mirror cabinet 10 provides a corresponding lighting mode, which can meet the user's usage needs and improve the user's usage experience.
[0069] In order to allow the light emitted by the light emitting element 200 to cover any position in front of the mirror surface 100a, the light emitting element 200 extends along the length direction of the side edge of the mirror surface 100a, and correspondingly, the receiving groove 100b extends along the length direction of the side edge of the mirror surface 100a. The light emitting element 200 can be designed in a plate shape, and the light emitting element 200 can be a light board.
[0070] In order to facilitate the user to open the cabinet door 112 to take out items, the light emitting element 200 is arranged on the outside of the cabinet body 110, that is, on the side edge of the mirror surface 100a. Figure 1 and Figure 2 As shown, the cabinet 110 includes a side wall (not shown) located at the side edge of the mirror surface 100a, and the cabinet assembly 100 includes a protective cover 120, which is connected to the side wall. The protective cover 120 is provided with the above-mentioned receiving groove 100b, so that the light-emitting element 200 is installed in the receiving groove 100b. Of course, in another embodiment, the protective cover 120 can also be designed to be semi-enclosed, and the protective cover 120 is connected to the side wall of the cabinet 110 and encloses the above-mentioned receiving groove 100b.
[0071] The number of the light emitting element 200 may be one, two, or more than two. When the number of the light emitting element 200 is one, the light emitting element 200 may be disposed on any side of the mirror surface 100a. When the number of the light emitting element 200 is two, the two light emitting elements 200 are disposed on two sides of the mirror surface 100a that are away from each other, or the two light emitting elements 200 may also be disposed on two sides of the mirror surface 100a that are adjacent to each other.
[0072] Please refer to Figure 5 , Figure 5 The front view of the partial structure of the mirror cabinet of the embodiment of the utility model (without the protective cover). The outline shape of the mirror surface 100a can be designed as a rectangle, and the mirror surface 100a includes a first side 101 and a second side 102 that are separated from each other along a first direction, and includes a third side 103 and a fourth side 104 that are separated from each other along a second direction, wherein the first direction can be the height direction of the mirror cabinet 10 (i.e., the vertical direction in the figure), and the second direction can be the width direction of the mirror cabinet 10 (i.e., the horizontal direction in the figure). When the number of the light-emitting elements 200 is set to two, the two light-emitting elements 200 are respectively arranged on the first side 101 and the second side 102 of the mirror surface 100a, in other words, one of the light-emitting elements 200 is arranged on the first side 101 of the mirror surface 100a, and the other light-emitting element 200 is arranged on the second side 102 of the mirror surface 100a; or, the two light-emitting elements 200 are respectively arranged on the third side 103 or the fourth side 104 of the mirror surface 100a, in other words, one of the light-emitting elements 200 is arranged on the third side 103 of the mirror surface 100a, and the other light-emitting element 200 is arranged on the fourth side 104 of the mirror surface 100a; or, the two light-emitting elements 200 are respectively arranged on the first side 101 and the third side 103 of the mirror surface 100a, that is, one of the light-emitting elements 200 is arranged on the first side 101 of the mirror surface 100a, and the other light-emitting element 200 is arranged on the third side 103 of the mirror surface 100a.
[0073] When the number of the light emitting elements 200 is set to be multiple, the number of the light emitting elements 200 can be set to be the same as the number of the sides of the mirror surface 100a, so that each light emitting element 200 is arranged on one side of one of the sides. For example, in one embodiment, when the outline shape of the mirror surface 100a is designed to be rectangular, the number of the light emitting elements 200 is set to four, such as Figure 5 As shown, four light emitting elements 200 are respectively disposed on the first side 101 , the second side 102 , the third side 103 and the fourth side 104 of the mirror surface 100 a .
[0074] In one embodiment, the surface where the light emitting surface 210 is located intersects with the mirror surface 100a. The surface where the light emitting surface 210 is located may intersect with the mirror surface 100a obliquely, or the surface where the light emitting surface 210 is located may intersect with the mirror surface 100a perpendicularly.
[0075] For example, please refer to Figure 6 and Figure 7 , Figure 6 This is a schematic diagram of the mirror cabinet in the second lighting mode according to an embodiment of the utility model. Figure 7 for Figure 6 The plane where the light-emitting surface 210 is located intersects the mirror surface 100a perpendicularly, and the light-emitting surface 210 is located on the side of the light-emitting element 200 close to the mirror surface 100a. Then, when the light-emitting surface 210 is located outside the receiving groove 100b, as shown in FIG. Figure 7 As shown, since the light emitting surface 210 is perpendicular to the mirror surface 100a, the light emitted by the light emitting surface 210 toward the person in front of the mirror surface 100a is oblique, and the user usually stands directly in front of the mirror surface 100a, so that most of the light emitted by the light emitting component 200 can be irradiated on the person, thereby improving the utilization rate of the light emitted by the light emitting component 200 and reducing the waste of light source caused by irradiating light to empty space. Moreover, because the light emitted by the light emitting surface 210 toward the person in front of the mirror surface 100a is oblique, the light will not directly enter the human eye, so that the light irradiated on the person is sufficient and not dazzling, and will not cause discomfort to the user. At the same time, a portion of the light emitted by the light-emitting surface 210 can be irradiated onto the mirror surface 100a and reflected by the mirror surface 100a, and a portion of the light reflected by the mirror surface 100a can also be irradiated onto the person. That is to say, when the user uses the mirror cabinet 10 to adjust his or her appearance, the light irradiated on the user includes the light directly irradiated on the user by the light-emitting component 200, and a portion of the light irradiated on the mirror surface 100a by the light-emitting component 200 and reflected by the mirror surface 100a, thereby enhancing the intensity of the light irradiated on the user. Compared with the mirror cabinet 10 in the related art in which the light source is flush with the mirror surface 100a, the picture displayed in the mirror surface 100a will be brighter and clearer, thereby enabling the user to better tidy up his or her appearance and improving the user experience.
[0076] It should be noted that, when the light-emitting surface 210 is configured to be perpendicular to the mirror surface 100a, when the light-emitting component 200 is in the first position, that is, when the light-emitting surface 210 is entirely located within the receiving groove 100b, the light emitted by the light-emitting surface 210 is almost completely covered by the groove wall of the receiving groove 100b. To avoid wasting electric energy, in this case the light-emitting component 200 is set to a non-luminous state in the first position.
[0077] Please refer again Figure 2 The cabinet assembly 100 may further include a shielding member 130, which is movably disposed at the opening of the receiving groove 100b to cover or expose the receiving groove 100b. Then, by providing the shielding member 130, when the light-emitting member 200 is in the first position and does not emit light, the shielding member 130 can cover the light-emitting member 200 in the receiving groove 100b, so that the light-emitting member 200 cannot be seen from the outside of the mirror cabinet 10, thereby achieving the hiding of the light-emitting member 200 and improving the aesthetics of the mirror cabinet 10.
[0078] The shielding member 130 can be rotatably disposed in the receiving groove 100b. When the light-emitting member 200 is moved from the first position to the second position by an external force, the light-emitting member 200 directly pushes the shielding member 130 to rotate under the action of the external force, so that the shielding member 130 reveals the receiving groove 100b, so that the light-emitting member 200 can move out of the opening of the receiving groove 100b. Specifically, the shielding member 130 can be rotatably connected to the groove wall of the receiving groove 100b by a torsion shaft, and the torsion shaft includes a torsion spring, which can continuously provide an elastic force for the shielding member 130 to cover the receiving groove 100b. When the light-emitting member 200 is returned to the receiving groove 100b by an external force, the shielding member 130 is no longer blocked by the light-emitting member 200. The shielding member 130 can automatically return to the state of covering the receiving groove 100b under the action of the elastic force, and always maintain the state of covering the receiving groove 100b, without the need to set an additional driving structure for the shielding member 130.
[0079] In another embodiment, the light emitting surface 210 may also be arranged to be parallel to the mirror surface 100a. It is understandable that when the light emitting surface 210 is arranged to be parallel to the mirror surface 100a, when the light emitting element 200 is in the first position, that is, when the light emitting surface 210 is completely located in the receiving groove 100b, only a small part of the light emitted by the light emitting surface 210 is blocked by the groove wall of the receiving groove 100b. In this case, the light emitting element 200 is arranged to emit light in the first position.
[0080] It should be noted that the term "perpendicular" in this article can mean that the two are exactly perpendicular or roughly perpendicular, and absolute perpendicularity is not required. Affected by the processing accuracy and assembly accuracy, the angle between the two can be regarded as perpendicular if there is a small angle deviation (for example, less than 3°) relative to 90°. Similarly, the term "parallel" in this article can mean that the two are exactly parallel or roughly parallel, and absolute parallelism is not required. The angle between the two can be regarded as parallel if it is within a smaller range (for example, less than 3°).
[0081] Optionally, in some other optional embodiments of the present application, the light-emitting component 200 can move under the action of an external force and drive the light-emitting surface 210 to change its posture relative to the mirror 100a, so that the light-emitting surface 210 is parallel to the mirror 100a in some cases, and the surface where the light-emitting surface 210 is located can intersect with the mirror 100a in other cases; or, the light-emitting surface 210 intersects with the mirror 100a at a small angle in some cases, and the surface where the light-emitting surface 210 is located intersects with the mirror 100a at a large angle in other cases.
[0082] For example, please refer to Figure 8 and Fig. 9 , Figure 8 This is a schematic diagram of a light emitting element in a first position according to an embodiment of the utility model. Fig. 9 The schematic diagram of the state of the light-emitting component of one embodiment of the utility model in the second position. In one embodiment, the light-emitting component 200 is configured as follows: when in the first position, the light-emitting surface 210 is parallel to the mirror surface 100a; when in the second position, the surface where the light-emitting surface 210 is located intersects with the mirror surface 100a. Specifically, the light-emitting component 200 can be rotatably installed in the receiving groove 100b. For example, the light-emitting component 200 can be rotatably connected to the groove wall of the receiving groove 100b through a rotating shaft. Then, the light-emitting component 200 can be flipped around the rotating shaft relative to the mirror surface 100a under the action of an external force, so that the light-emitting surface 210 can be flipped from a posture parallel to the mirror surface 100a in the first position to a posture intersecting with the mirror surface 100a in the second position.
[0083] In another embodiment, the light emitting element 200 is configured such that: when in the first position, the surface where the light emitting surface 210 intersects with the mirror surface 100a at a first angle; when in the second position, the surface where the light emitting surface 210 intersects with the mirror surface 100a at a second angle. For example, the light-emitting component 200 can be rotatably installed in the receiving groove 100b, and the light-emitting component 200 can be rotatably connected to the groove wall of the receiving groove 100b through a rotating shaft. Then, the light-emitting component 200 can flip around the rotating shaft relative to the mirror 100a under the action of external force, thereby changing the intersection angle of the surface where the light-emitting surface 210 is located with respect to the mirror 100a. For example, in some cases, in the first position, the intersection angle of the surface where the light-emitting surface 210 is located with the mirror 100a is between 0° and 30°. When the light-emitting component 200 is rotated to the second position, the intersection angle of the surface where the light-emitting surface 210 is located with the mirror 100a can be between 30° and 90°, thereby increasing the intersection angle of the surface where the light-emitting surface 210 is located with the mirror 100a, realizing the change of the light-emitting angle, and providing a variety of lighting modes.
[0084] In one embodiment, the light emitting member 200 is slidably disposed in the receiving groove 100b, and the light emitting member 200 is slidably switched between the first position and the second position under the action of external force. Figure 2 and Figure 7 , a slide groove 121 is provided in the receiving groove 100b, a slide rail (not shown) is connected to the light-emitting component 200, and the slide rail is slidably inserted in the slide groove 121. Through the sliding cooperation between the slide rail and the slide groove 121, the light-emitting component 200 can slide relative to the receiving groove 100b under the action of an external force. Of course, there can be a variety of ways to slide the light-emitting component 200 and the receiving groove 100b. For example, in another optional embodiment of the present application, a guide rail and a slider slidably connected to the guide rail can also be provided in the receiving groove 100b, and the light-emitting component 200 is installed on the slider, so that the light-emitting component 200 can slide relative to the receiving groove 100b under the action of an external force. It can be understood that the drawings of this embodiment are only illustrated by the former as an example, and cannot be regarded as a limitation of the present application.
[0085] In order to achieve sliding switching of the light-emitting component 200 between the first position and the second position, the light-emitting component 200 can be pushed or pulled to slide relative to the accommodating groove 100b by manually applying a force, or a driving source can be configured for the light-emitting component 200, and the driving source can be electrically connected to the control end of the mirror cabinet 10, such as a circuit board, and the driving source drives the light-emitting component 200 to slide in response to the triggering of the control end.
[0086] Exemplarily, in one embodiment, the mirror cabinet 10 further includes a driving mechanism, the driving mechanism is connected to the light-emitting member 200, and the driving mechanism is used to drive the light-emitting member 200 to slide and switch between the first position and the second position. Specifically, the driving mechanism may include a driving member and a transmission member, the transmission member is arranged in the receiving groove 100b, the transmission member is connected to the light-emitting member 200, the driving member is connected to the transmission member, and the driving member is used to drive the transmission member to drive, so as to drive the light-emitting member 200 to slide relative to the cabinet assembly 100.
[0087] For example, the driving member can be a driving motor, and the transmission member can include a screw and a slider threadedly connected to the screw, the screw is extended along the depth direction of the receiving groove 100b, one end of the screw is connected to the output shaft of the driving motor, and the light-emitting member 200 is connected to the slider. During the driving process, the output shaft of the driving motor drives the screw to rotate synchronously, and the screw drives the slider to transmit along the axial direction of the screw, so that the light-emitting member 200 can be driven to slide relative to the receiving groove 100b. By controlling the forward and reverse rotation of the driving motor, the corresponding screw also reverses forward and reverse, so that the slider on the screw moves close to the opening of the receiving groove 100b or moves away from the opening of the receiving groove 100b, thereby driving the light-emitting member 200 to extend out of the receiving groove 100b or retract into the receiving groove 100b, so as to achieve the driving light-emitting member 200 to slide and switch between the first position and the second position. Of course, the transmission member can also adopt other transmission structures, such as a synchronous belt transmission structure, a gear rack transmission structure, etc., which are not limited in the embodiments of the present application.
[0088] Users usually use the mirror cabinet 10 to perform makeup, skin care, washing and other operations. Users have different lighting requirements for different operations. For example, the light brightness required for makeup is usually greater than the light brightness for skin care and washing. In order to enrich the lighting modes of the mirror cabinet 10 so as to meet the different lighting requirements of users when using the mirror cabinet 10, in one embodiment, the number of light-emitting parts 200 is set to multiple.
[0089] Since each light-emitting member 200 can be moved and switched between the first position and the second position, each light-emitting member 200 can be in any position between the first position and the second position, and the lighting state of the light-emitting member 200 in any position is different. By setting a plurality of light-emitting members 200, a plurality of light-emitting members 200 can be combined in the same or different positions, and a plurality of lighting modes can be provided, so that the user can select the corresponding lighting mode for use according to their own needs, which can meet the needs of the user and improve the user experience. Moreover, the light brightness of each light-emitting member 200 itself can also be adjusted. By combining a plurality of light-emitting members 200 in a plurality of light-emitting combinations and adjusting the brightness of the light-emitting members 200 at the same time, the lighting mode of the mirror cabinet 10 can be further enriched.
[0090] In one embodiment, the mirror cabinet 10 includes a first illumination mode, a second illumination mode, a third illumination mode, and a fourth illumination mode. In the first illumination mode, all light-emitting members 200 move from the first position toward the second position so that the entire light-emitting surface 210 of each light-emitting member 200 is located outside the receiving groove 100b. In the second illumination mode, some light-emitting members 200 move from the first position toward the second position so that the entire light-emitting surface 210 of some light-emitting members 200 is located outside the receiving groove 100b, and the number of some light-emitting members 200 is greater than one (i.e., including at least two light-emitting members 200, and not all light-emitting members 200). In the third illumination mode, one of the light-emitting members 200 moves from the first position toward the second position so that the entire light-emitting surface 210 of one of the light-emitting members 200 is located outside the receiving groove 100b. In the fourth illumination mode, one of the light-emitting members 200 moves from the first position toward the second position so that a portion of the light-emitting surface 210 of one of the light-emitting members 200 is located outside the receiving groove 100b.
[0091] Specifically, in the first lighting mode, the entire light-emitting surface 210 of each light-emitting component 200 is located outside the receiving groove 100b to emit light, so that all light-emitting components 200 can emit light to the front of the mirror surface 100a. At this time, the mirror cabinet 10 can provide a very bright lighting environment, that is, the first lighting mode is a high-brightness lighting mode, which can meet the use scenarios of high-brightness lighting requirements, for example, it can be applied as a beauty lighting mode. In the second lighting mode, the entire light-emitting surface 210 of some light-emitting components 200 is located outside the receiving groove 100b to emit light, that is, some of the light-emitting components 200 in the plurality of light-emitting components 200 emit light to the front of the mirror surface 100a. At this time, the mirror cabinet 10 can provide a lighting environment with a brightness lower than that of the first lighting mode, so the second lighting mode is a medium-brightness lighting mode, which can be applied as a skin care lighting mode. In the third lighting mode, only the entire light-emitting surface 210 of one light-emitting component 200 is located outside the receiving groove 100b to emit light, so the person or object in front of the mirror surface 100a is only illuminated by the light emitted by one light-emitting component 200. At this time, the overall brightness of the lighting environment provided by the mirror cabinet 10 is low, that is, the third lighting mode is a low-brightness lighting mode, which is suitable for use scenarios with low lighting requirements, such as washing lighting mode. In the fourth lighting mode, only part of the light-emitting surface 210 of one light-emitting component 200 is located outside the receiving groove 100b to emit light. Since only one light-emitting component 200 emits a small amount of light to the front of the mirror surface 100a, the overall light brightness provided by the mirror cabinet 10 is lower than the third lighting mode. The fourth lighting mode is an extremely low-brightness lighting mode, which is generally suitable for warning purposes, such as night lighting warnings, and can be applied as a night lighting mode.
[0092] For example, in one embodiment, reference Figure 5As shown, the contour shape of the mirror surface 100a is designed to be rectangular, and the mirror surface 100a includes a first side 101 and a second side 102 that are opposite to each other along a first direction, and a third side 103 and a fourth side 104 that are opposite to each other along a second direction, wherein the first direction is the height direction of the mirror cabinet 10, the first side 101 is the top side (or the upper side) of the mirror surface 100a, the second side 102 is the bottom side (or the lower side) of the mirror surface 100a, the second direction is the width direction of the mirror cabinet 10, the third side 103 is the left side of the mirror surface 100a, and the fourth side 104 is the right side of the mirror surface 100a. Correspondingly, the number of the light-emitting components 200 is set to four, and the four light-emitting components 200 are respectively arranged on the first side 101, the second side 102, the third side 103 and the fourth side 104 of the mirror 100a. For the convenience of explanation, the light-emitting component 200 located on the first side 101 is defined as the first light-emitting component 201, the light-emitting component 200 located on the second side 102 is defined as the second light-emitting component 202, the light-emitting component 200 located on the third side 103 is defined as the third light-emitting component 203, and the light-emitting component 200 located on the fourth side 104 is defined as the fourth light-emitting component 204.
[0093] Please refer to Fig.10 and Fig.11 , Fig.10 This is a schematic diagram of a mirror cabinet in a first lighting mode according to an embodiment of the utility model. Fig.11 for Fig.10 When the user uses the mirror cabinet 10 for makeup, the demand for light brightness is the greatest, and the first lighting mode is selected. At this time, the four light-emitting components 200 are driven by their respective driving mechanisms to move (that is, the first light-emitting component 201, the second light-emitting component 202, the third light-emitting component 203, and the fourth light-emitting component 204 all move out of the receiving groove 100b), and move until the entire light-emitting surface 210 of each of the four light-emitting components 200 is located outside the receiving groove 100b. In this case, please refer to Fig.12 , Fig.12 This is a light simulation diagram of the mirror cabinet in the first lighting mode of the embodiment of the utility model. The user's face receives light from the light-emitting parts 200 on the four sides of the mirror surface 100a, and each side is high-brightness, high-density light, so that the user can clearly see the face makeup through the mirror surface 100a, meeting the user's lighting needs when making up. At the same time, each light-emitting part 200 can be adjusted to emit light at a higher brightness and a higher color temperature, for example, each light-emitting part 200 can be adjusted to emit light at 100% brightness and a color temperature of 6500K, which is more conducive to the user's makeup.
[0094] Please refer to Figure 6 and Figure 7When the user uses the mirror cabinet 10 for skin care, the light intensity required for skin care is usually second only to the light requirement for makeup. The second lighting mode is selected. At this time, two of the light-emitting members 200 move under the drive of their driving mechanisms. For example, the third light-emitting member 203 and the fourth light-emitting member 204 move out of the receiving groove 100b, and move to make the entire light-emitting surface 210 of the third light-emitting member 203 outside the receiving groove 100b, and the entire light-emitting surface 210 of the fourth light-emitting member 204 outside the receiving groove 100b, while the first light-emitting member 201 and the second light-emitting member 202 remain in the first position and do not move. Then, the user's face only receives light emitted by the light-emitting members 200 on the left and right sides of the mirror surface 100a. Please refer to Fig.13 , Fig.13 This is a light simulation diagram of the mirror cabinet of an embodiment of the utility model in the second lighting mode. At this time, the overall lighting brightness of the mirror cabinet is appropriate. In order to make the lighting environment more conducive to skin care, the luminous brightness and color temperature of the third light-emitting component 203 and the fourth light-emitting component 204 can be lowered at the same time. For example, the third light-emitting component 203 and the fourth light-emitting component 204 are adjusted to emit light at 80% brightness and 5000K color temperature.
[0095] Please refer to Fig.14 and Fig.15 , Fig.14 This is a schematic diagram of the mirror cabinet in the third lighting mode according to an embodiment of the utility model. Fig.15 for Fig.14 When the user uses the mirror cabinet 10 to wash, the demand for light brightness is further reduced, and the third lighting mode is selected. At this time, one of the light-emitting components 200 moves under the drive of its driving mechanism, for example, the first light-emitting component 201 moves out of the receiving groove 100b, and moves to make the entire light-emitting surface 210 of the first light-emitting component 201 outside the receiving groove 100b, while the second light-emitting component 202, the third light-emitting component 203 and the fourth light-emitting component 204 are all maintained in the first position and do not move. Then, the user's face only receives light from the light-emitting component 200 on the top side of the mirror surface 100a, please refer to Fig.16 , Fig.16 This is a light simulation diagram of the mirror cabinet in the third lighting mode of an embodiment of the utility model. At this time, the light density is greatly reduced, and the overall light brightness is low but sufficient for users to wash. At the same time, the light brightness and color temperature of the first light-emitting component 201 can be lowered. For example, the first light-emitting component 201 is adjusted to emit light at 50% brightness and 4000K color temperature to make the overall lighting soft and reduce power consumption.
[0096] Please refer to Fig.17 , Fig.17This is a cross-sectional view of the mirror cabinet of the embodiment of the utility model in the fourth lighting mode. When the user uses the mirror cabinet 10 for night lighting, the demand for light brightness is the lowest, and the fourth lighting mode is selected. At this time, one of the light-emitting components 200 moves under the drive of its driving mechanism, for example, the first light-emitting component 201 moves outside the receiving groove 100b, and moves to make part of the light-emitting surface 210 of the first light-emitting component 201 located outside the receiving groove 100b, for example, moves to make the length of the light-emitting surface 210 of the first light-emitting component 201 extending outside the receiving groove 100b account for 20% of the total length of the light-emitting surface 210, and the second light-emitting component 202, the third light-emitting component 203 and the fourth light-emitting component 204 are all maintained in the first position and do not move. At this time, the front of the mirror surface 100a is only illuminated by a small part of the light from one light-emitting component 200, please refer to Fig.18 , Fig.18 This is a light simulation diagram of the mirror cabinet in the fourth lighting mode of an embodiment of the utility model, which can greatly reduce the overall lighting brightness of the mirror cabinet 10, so that when a user approaches the mirror cabinet 10 in a dark environment at night, the light is sufficient to provide a warning to the user to avoid collision, and the difference in brightness between the lighting environment and the surrounding environment is small and will not cause glare. In order to be more conducive to night lighting, the brightness and color temperature of the first light-emitting component 201 can be further lowered, for example, the first light-emitting component 201 is adjusted to emit light at a brightness of 10% and a color temperature of 3000K.
[0097] The embodiments of the utility model are described in detail above in conjunction with the accompanying drawings, but the utility model is not limited to the above embodiments. Various changes can be made within the knowledge of ordinary technicians in the relevant technical field without departing from the purpose of the utility model. In addition, the embodiments of the utility model and the features in the embodiments can be combined with each other without conflict.
Claims
1. Mirror cabinet, characterized in that, include: A cabinet assembly comprises a mirror surface and a receiving groove, wherein the opening of the receiving groove faces the same direction as the mirror surface; and The light-emitting component includes a light-emitting surface, and the light-emitting component is movably arranged in the receiving groove. The light-emitting component can move and switch between a first position and a second position under the action of an external force. When in the first position, the light-emitting surface is located in the receiving groove, and when in the second position, at least a part of the light-emitting surface is located outside the receiving groove.
2. The mirror cabinet according to claim 1, characterized in that: The surface where the light emitting surface is located intersects with the mirror surface, or the light emitting surface is parallel to the mirror surface.
3. The mirror cabinet according to claim 1, characterized in that: The light-emitting element can move under the action of an external force and drive the light-emitting surface to change its posture relative to the mirror surface. When in the first position, the light-emitting surface is parallel to the mirror surface; when in the second position, the surface where the light-emitting surface is located intersects with the mirror surface; or, When in the first position, the surface where the light-emitting surface is located intersects with the mirror surface at a first angle; when in the second position, the surface where the light-emitting surface is located intersects with the mirror surface at a second angle.
4. The mirror cabinet according to any one of claims 1 to 3, characterized in that: The mirror surface includes a first side and a second side facing away from each other along a first direction; The number of the light-emitting element is one, and the light-emitting element is arranged on the first side or the second side; Alternatively, the number of the light-emitting components is two, one of which is disposed on the first side, and the other of which is disposed on the second side.
5. The mirror cabinet according to any one of claims 1 to 3, characterized in that: The mirror surface includes a plurality of side edges. The number of the light-emitting elements is multiple, the number of the light-emitting elements is the same as the number of the side edges, and each of the light-emitting elements is arranged on one side of one of the side edges.
6. The mirror cabinet according to claim 5, characterized in that: The mirror cabinet includes a first lighting mode, a second lighting mode, a third lighting mode and a fourth lighting mode; In the first illumination mode, all the light emitting elements move from the first position toward the second position, so that the entire light emitting surface of each of the light emitting elements is located outside the receiving groove; In the second illumination mode, some of the light emitting elements move from the first position toward the second position so that the entire light emitting surface of some of the light emitting elements is located outside the receiving groove, and the number of some of the light emitting elements is greater than one; In the third illumination mode, one of the light emitting elements moves from the first position toward the second position so that the entire light emitting surface of one of the light emitting elements is located outside the receiving groove; In the fourth illumination mode, one of the light-emitting elements moves from the first position toward the second position, so that a portion of the light-emitting surface of one of the light-emitting elements is located outside the receiving groove.
7. The mirror cabinet according to any one of claims 1 to 3, characterized in that: The light emitting member is slidably disposed in the accommodating groove, and the mirror cabinet further comprises a driving mechanism, which is connected to the light emitting member to drive the light emitting member to slide and switch between the first position and the second position.
8. The mirror cabinet according to claim 7, characterized in that: The driving mechanism comprises: A transmission member is disposed in the receiving groove, and the transmission member is in transmission connection with the light-emitting member; and A driving member is connected to the transmission member, and is used to drive the transmission member to drive the light-emitting member to slide relative to the cabinet assembly.
9. The mirror cabinet according to any one of claims 1 to 3, characterized in that: The cabinet assembly comprises: A cabinet body is provided with the mirror surface, and the cabinet body further comprises a side wall located at a side edge of the mirror surface; and The protective cover is connected to the side wall, and the protective cover is provided with the receiving groove, or the protective cover and the side wall are combined to form the receiving groove.
10. The mirror cabinet according to any one of claims 1 to 3, characterized in that: The cabinet assembly further comprises a shielding member, which is movably disposed at the opening of the receiving slot to cover or expose the receiving slot.