The present disclosure relates to the field of personal care appliances, and in particular to a personal care appliance with a detachable end cover assembly, such as an electric toothbrush with a detachable end cover assembly.
With increasing market demand for personal care products, products are required to be more user-friendly to meet the market demand. Generally, personal care products have light indications on their housings, or light may be used to indicate working states of electric toothbrushes, such as lights having different colors are used to indicate different brushing pressures, to remind customers of the appropriate brushing pressure and so on. The light is generally provided by a light-emitting device installed in the middle of the housing.
In some applications, it is proposed to add a light indication to an end portion of a personal care product, such as a tail portion of an electric toothbrush, however, since an end cover is generally installed at the tail portion of the electric toothbrush and the tail portion further includes a sealing structure and a matching structure, there is an obstacle to arranging a light-emitting device at this position.
In order to overcome the shortcomings of the prior art, the present disclosure provides a personal care appliance, which is provided with a housing and an end cover, with an opening being formed at an end portion of the housing in a longitudinal axis, the end cover having an end wall and a side wall, the end wall being substantially perpendicular to the longitudinal axis, and the side wall extending perpendicularly from the end wall and being inserted into the opening along a direction of the longitudinal axis, and the personal care appliance further includes an end cover light-emitting device, the end cover light-emitting device including: a light source arranged inside the housing close to the end cover; and a light transmission portion including at least a part of the side wall and/or at least a part of a peripheral portion, and a light incident portion of the light transmission portion is located at at least a part of the side wall, a light emission portion of the light transmission portion is located at at least a part of the peripheral portion of the side wall, and the light transmission portion is made of a light-transmissive first material.
According to an aspect of the present disclosure, a circuit board is arranged inside the housing, and the light source includes an LED light source installed on the circuit board.
In one embodiment, the light source includes a first LED light source and a second LED light source, and the first LED light source and the second LED light source are respectively installed on two opposite surfaces of the circuit board.
According to another aspect of the present disclosure, the end wall further includes a central portion surrounded by the peripheral portion, and the central portion is made of a non-light-transmissive second material, light guide surfaces are formed between the central portion and the peripheral portion of the end wall, and the light guide surfaces are inclined relative to the longitudinal axis.
According to another aspect of the present disclosure, the light incident portion further includes: an incident surface located at an end surface of the side wall and/or an incident surface located at an inner peripheral surface of the side wall, and the LED light source is arranged relative to the surface and an incident angle of light rays emitted from the LED light source on the incident surface is between 0 and 10 degrees, and the incident surface includes a spherical surface with the LED light source as the center of sphere.
According to another aspect of the present disclosure, the side wall includes reflecting surfaces for transmitting light rays to the light emission portion, and each of the reflecting surface forms an interface between an optically dense substance and an optically rarer substance, the optically dense substance is the first material forming the light transmission portion, and the reflecting surface is configured relative to the light rays from the light source and an incident angle of the light rays emitted by the light source relative to the reflecting surface is greater than a total reflection angle of the reflecting surface. In one embodiment, a gap is formed between the reflecting surface and an inner surface of a segment of the housing surrounding the reflecting surface, and the optically rarer substance includes air filled in the gap.
According to another aspect of the present disclosure, the side wall includes reflecting surfaces for transmitting light rays to the light emission portion, and at least a part of each of the reflecting surfaces is covered with a non-light-transmissive material, and an angle of the reflecting surface relative to incident light rays is set to reflect the light source toward the light emission portion.
According to another aspect of the present disclosure, the peripheral portion of the end cover is inserted into the opening and surrounded by the housing, and the housing includes a light-transmissive portion surrounding the peripheral portion.
According to another aspect of the present disclosure, the end cover is integrally formed of the first material, and the personal care appliance further includes a coil bobbin located in the housing and adjacent to the end wall, and a flange of the coil bobbin adjacent to the end wall includes a reflecting surface.
In one embodiment, the personal care appliance of the present disclosure is an electric toothbrush, a groove is formed in an outer surface of the side wall of the end cover, and a sealing ring is accommodated in the groove.
According to the light-emitting device of the present disclosure, an annular light-emitting assembly may be formed at a tail end of a handle of an electric toothbrush, and the structure of the end cover can allow the light rays to avoid the sealing ring made of rubber having no or weak light-transmissive ability and lead the light rays out from an end portion of a circuit board, to provide a novel way of light indication. In addition, the structure of the light-emitting device would not increase the installation complexity of the handle and the water tightness.
The present disclosure will be further described based on the exemplary embodiments shown in the drawings. The exemplary embodiments are given by way of non-limiting illustration. It should be noted that the drawings are only schematic representations of the embodiments of the present disclosure given by way of non-limiting examples.
Personal care appliances with detachable end cover assemblies according to the embodiments of the present disclosure will be described below with reference to the drawings. In the following text, the personal care appliances are described by taking electric toothbrushes as examples, but it should be understood that the personal care appliances may also be oral irrigators, electric shavers, and other personal care appliances having the requirements of waterproofing.
As shown in
In order to ensure the waterproof requirements of the electric toothbrush, a waterproof seal is formed between the end cover 2 and the open opening 15 formed at one end of the housing 11. Generally, a sealing ring 6 is arranged between the end cover 2 and the housing 11, and the sealing ring 6 is embedded in a groove 25 formed in the side wall of the end cover 2, to prevent fluid and other pollutants from entering the housing 11 through the opening 15. In addition, the end cover 2 and the housing 11 may be provided with engagement devices to achieve a fixed connection between the end cover 2 and the housing 11.
The electric toothbrush according to the embodiments of the present disclosure is provided with an end cover light-emitting device on a side of the handle 1 where the end cover 2 is located. The end cover light-emitting device according to the present disclosure mainly includes a light source and a light transmission portion, and light rays emitted by the light source are transmitted through the light transmission portion to finally provide an annular light indication around the end portion of the handle 1.
In one embodiment, as shown in
As shown in
As shown in
As shown in
Each of the first incident surface 26 and the second incident surface 28 is an interface between an optically dense substance and an optically rarer substance. In one embodiment, the material of the light transmission portion of the end cover 2 is an optically dense substance relative to air, while the air surrounding the light transmission portion of the end cover 2 is an optically rarer substance.
As can be seen from
In order to avoid the impact of the generally opaque O-ring 6 embedded in the side wall on the transmission of light rays, and also to allow the light rays to radially leave the light emission portion of the peripheral portion 20, light guide surfaces 22, 24 and reflecting surfaces 27, 29 are further provided on the side wall which serves as the light transmission portion.
In one embodiment, the end wall of the end cover 2 is divided into two portions: a central portion 23 of the end wall and the peripheral portion 20 of the end wall. In this way, a light guide surface 22 of the peripheral portion 20 and a light guide surface 24 of the central portion 23 are formed in the end wall of the end cover 2, and the two portions 20 and 23 are integrated by means of the light guide surfaces 22 and 24. Since the central portion 23 is a non-light-transmissive or weak light-transmissive body, it is not required that the central portion 23 is an optically rarer substance relative to the peripheral portion 20.
As shown in
The light transmission portion further includes a first reflecting surface 27 and a second reflecting surface 29 corresponding to the first incident surface 26 and the second incident surface 28, respectively.
In one embodiment, as shown in
As shown in
In the first embodiment shown in
According to the principle of reflection and refraction of visible light, when light rays enter from one light-transmissive substance into another light-transmissive substance, the smaller an incident angle of incident light rays on an interface between the two substances, the less the energy of reflected light rays, while the greater the energy of refracted light rays entering another substance. When the incident angle is 0 degrees, the energy of refracted light rays or incident light rays is the largest. In addition, where the light rays enter from one light-transmissive optically dense substance into another light-transmissive optically rarer substance, when an incident angle of the light rays on the interface between the two substances is greater than a total reflection angle, the energy of reflected light rays is the largest, and the light cannot be refracted into the optically rarer substance, that is, the light rays can only be reflected in the optically dense substance. If the total reflection angle is C, and the refractive index of the optically dense substance is n, then sin (C)=1/n. The refractive index of the optically dense substance is greater than that of the optically rarer substance. For example, the refractive index of MABS (transparent ABS) is about 1.542, so the total reflection angle of MABS is 40.43 degrees. Where light rays are emitted toward air from an MABS material, when the incident angle of light rays on the MABS material is greater than or equal to 40.43 degrees, the light rays are only totally reflected in the MABS, and no light rays are emitted into the air from the MABS.
In the first embodiment, the first reflecting surface 27 and the second reflecting surface 29 are each particularly configured as an interface between an optically dense substance and an optically rarer substance. The first reflecting surface 27 and the second reflecting surface 29 are spaced apart from the adjacent housing 11 by a gap 13 and a gap 14, the gap 13 and the gap 14 are both filled with air, and thus the first reflecting surface 27 and the second reflecting surface 29 each form an interface between a material of the side wall and air. The material of the side wall is an optically dense substance, while the air is an optically rarer substance.
First, a light transmission path shown in
The first LED 41 installed on one side of the circuit board 4 emits a first part of light L10, L11, L12 of the first LED, and an included angle between the first part of light L10, L11, L12 of the first LED and the main optical axis L01 of the first LED is less than 60 degrees and greater than 0 degrees. In one embodiment, the included angle between the first part of light L10, L11, L12 of the first LED and the main optical axis L01 of the first LED is less than 45 degrees and greater than 0 degrees. The advantage of such an arrangement is that the closer the light rays of the LED is to the main optical axis L01 of the first LED, the greater the light intensity of the LED light. Since the first incident surface 26 is a part of the spherical surface with the first LED 41 as the center of sphere, the incident angle of the first part of light L10, L11, L12 of the first LED on the first incident surface 26 is 0 degrees, and the smaller the incident angle of light rays, the greater the energy of light rays incident in the light transmission portion of the end cover. In the first embodiment, the first part of light L10, L11, L12 of the first LED are hardly reflected on the first incident surface 26, but instead enter the light transmission portion entirely. Of course, the incident angle of the first part of light L10, L11, L12 of the first LED on the first incident surface 26 may be slightly greater than 0 degrees, for example, the incident angle of the first part of light L10, L11, L12 of the first LED on the first incident surface 26 may be slightly greater than 0 degrees and less than 10 degrees, which would be beneficial to the flexibility of the arrangement of members inside the end portion of the handle 1, but would not have a significant impact on the brightness at the end cover 2.
After passing through the first incident surface 26, the first part of light L10, L11, L12 travels in the side wall of the end cover 2, and then the first part of light L10, L11, L12 reaches the first reflecting surface 27. The side wall of the end cover 2 is located on one side of the first reflecting surface 27, and the gap 13 shown in
Similarly, by reasonably setting an included angle between an auxiliary reflecting surface normal line L03 of the auxiliary reflecting surface 30 located on an inner radial side of the side wall and the main optical axis L01 of the first LED, the second part of light L20, L21, L22 of the first LED is totally reflected in the side wall on the auxiliary reflecting surface 30, and the auxiliary reflecting surface 30 also forms an interface between an optically dense substance and an optically rarer substance.
Similarly, by reasonably setting an included angle between the normal line L03 of the auxiliary reflecting surface and the light emission portion 20 of the rear cover, the incident angle of a third part of light L30, L31, L32 of the first LED on the peripheral portion 20 of the end cover 2 serving as the light emission portion may be substantially less than the total reflection angle, causing the third part of light L30 of the first LED to be refracted, at the peripheral portion 20, to the outside air.
The central portion 23 of the end cover 2 is a non-light-transmissive or weak light-transmissive component. It is preferable that the light guide surfaces 22, 24 formed at the junction of the central portion 23 and the peripheral portion 20 are high-gloss surfaces to enhance the reflection effect. The light guide surfaces 22, 24 in the end wall surface each taper upward along the longitudinal axis LS. The central portion 23 of the end wall is not an optically rarer substance relative to the peripheral portion 20, the light rays in the peripheral portion 20 are no longer totally reflected on the light guide surfaces 22, 24 of the second portion of the rear cover, and the central portion 23 of the end wall is a non-transparent body, and almost all the light rays are reflected on the light guide surfaces 22, 24 and reflected to the light emission portion 20 on a side surface of the rear cover, to reduce the loss of energy of the light rays.
Next, referring to
As shown in
Since at least a portion of the second incident surface 28 is a part of a spherical surface with the fourth LED 44 as the center of sphere, the incident angle of the first part of light L13, L14, L15, L16 of the fourth LED 44 on the portion of the second incident surface 28 is 0 degrees, and the side of the second incident surface 28 close to the LED 44 is adjacent to air, and the side of the second incident surface 28 away from the LED 44 is adjacent to the light-transmissive material such as MABS of the end cover 2, and the first part of light L13, L14, L15, L16 of the fourth LED 44 is hardly reflected on the second incident surface 28, but instead enter the first portion 21 of the rear cover entirely. Of course, the incident angle of the first part of light L13, L14, L15, L16 of the fourth LED 44 on the second incident surface 28 may be slightly greater than 0 degrees, for example, the incident angle of the first part of light L13, L14, L15, L16 of the fourth LED 44 on the second incident surface 28 may be slightly greater than 0 degrees and less than 10 degrees, which is also feasible.
After passing through the second incident surface 28, the first part of light L13, L14, L15, L16 of the fourth LED 44 travels in the side wall of the end cover 2, and the first part of light L13, L14, L15, L16 of the fourth LED 44 reaches the second reflecting surface 29. Since the second reflecting surface 29 is adjacent to the side wall of the end cover 2 on an inner radial side, and adjacent to the gap 14 on an outer radial side, and the substance in the gap 14 is air, the second reflecting surface 29 forms an interface between an optically dense substance and an optically rarer substance. By reasonably setting the included angle between the second reflecting surface 29 and the main optical axis L03 of the fourth LED 44, the incident angle formed by the first part of light L13, L14, L15, L16 of the fourth LED 44 and a normal line L03 of the second reflecting surface may be greater than the total reflection angle C of the interface. For example, when the included angle between the first part of light L14 of the fourth LED 44 and the main optical axis L03 of the fourth LED is 5 degrees, the incident angle of the first part of light L14 of the fourth LED 44 on the second incident surface 28 is 0 degrees, and the total reflection angle of the side wall of the end cover 2 is 40.43 degrees, it is only necessary that the included angle between the normal line of the second reflecting surface 29 and the main optical axis L03 of the fourth LED 44 is greater than 35.43 degrees (which is equal to the total reflection angle C minus the included angle between the first part of light L14 of the fourth LED 44 and the main optical axis L03 of the fourth LED), and the second reflecting surface 29 tapers upward along the longitudinal axis LS. The first part of light L14 of the LED is totally reflected on the second reflecting surface 29, and the energy of the light rays is transmitted in the transmission portion of the side wall of the end cover 2 without leaking to the outside.
Similarly, by reasonably setting the included angle between the normal line Loo of the second reflecting surface 29 and the light emission portion 20 at the bottom of the rear cover, the incident angle of the second part of light of the fourth LED on the light emission portion 20 at the bottom of the rear cover may be less than the total reflection angle, causing the second part of light of the fourth LED to be refracted, at the peripheral portion 20 of the end cover 2, to the outside air.
By reasonably setting the included angle between the normal line L06 of the second reflecting surface 29 and the normal line L04 of the light guide surface 24 of the end wall, the second part of light L23, L24, L25 of the fourth LED may be refracted to the outside air from the peripheral portion 20 of the side surface of the rear cover serving as the light emission portion by means of the reflection of the light guide surface 24. The central portion 23 of the end wall is a non-light-transmissive or weak light-transmissive component, for example, made of a transparent material MABS added with white masterbatch by injection molding. In one embodiment, the light guide surfaces 22, 24 are high-gloss surfaces, to enhance the reflection effect. As shown in
In other embodiments, the second reflecting surface 29, the first reflecting surface 27, and the auxiliary reflecting surface 30 are entirely or partially covered by non-light-transmissive components or coatings, the non-light-transmissive components or coatings partially or entirely replace air gaps corresponding to the second reflecting surface 29, the first reflecting surface 27, and the auxiliary reflecting surface 30, and the energy of light rays can also be transmitted in the transmission portion of the side wall of the end cover 2 without leaking to the outside.
In one embodiment, the end cover 2 may be manufactured by injection molding. In one embodiment, the end cover 2 is divided into two portions, the side wall and the peripheral portion 20 of the end wall of the end cover 2 serve as the first portion and are made of a light-transmissive material by injection molding, and the central portion 23 of the end wall of the end cover 2 serves as the second portion and is made of a non-light-transmissive material by injection molding. The first portion of a non-light-transmissive material is first injection molded, and then the second portion is injection molded with a transparent material and the second portion is integrated with the first portion in a water-tight manner.
In other embodiments, the injection molding order of the first portion and the second portion may be interchanged.
The materials of the first portion 21 and the second portion may include MABS, ABS, PMMA, PC, etc. The materials of the first portion and the second portion may be the same or different. The first portion 21 of the end cover is made of a colorless transparent material or a light-transmissive colored material by injection molding. The central portion serving as the second portion is made of a non-light-transmissive material by injection molding, and a reflective material may be added to the material. For example, the second portion may be made of a transparent material MABS added with white masterbatch by injection molding.
As shown in
According to the light-emitting device of the present disclosure, an annular light-emitting display may be formed at a tail end of a handle 1 of an electric toothbrush, the efficient transmission of light rays can be realized by means of the structure of the end cover itself, and the structure of the end cover can allow the light rays to avoid the sealing ring made of rubber having no or weak light-transmissive ability and lead the light rays out from an end portion of a circuit board, to provide a novel way of light indication. In addition, the structure of the light-emitting device would not increase the installation complexity of the handle 1 and the water tightness.
Number | Date | Country | Kind |
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202210729560.5 | Jun 2022 | CN | national |
Filing Document | Filing Date | Country | Kind |
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PCT/CN2023/095455 | 5/22/2023 | WO |