An electronic candle

By using a reflector in an electronic candle to reflect and focus light onto a flame simulator, the problem of weak light reception in existing electronic candle flame plates is solved, achieving higher brightness and more realistic lighting effects.

CN224680600UActive Publication Date: 2026-08-25SHENZHEN LIOWN ELECTRONICS COMPANY
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Patent Information

Application Number
CN202521750399.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-14
Publication Date
2026-08-25
Estimated Expiration
2035-08-14

AI Technical Summary

Technical Problem

The current lighting method of electronic candles results in weak light on the flame plate, with average brightness and poor lighting effect.

Method used

A reflector is used to reflect and focus the light emitted by the light source onto the flame simulator. The concave reflective surface changes the light path and increases the light concentration, thus achieving multi-angle illumination of the flame simulator.

Benefits of technology

The light concentration and brightness of the flame simulator were improved, enhancing the lighting effect and improving the simulation, enabling the flame simulator to maintain good lighting even in any swinging position.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an electronic candle, include: casing is equipped with installation cavity, flame simulation spare can swing and install in the installation cavity, light source installs in the installation cavity, reflector installs in the installation cavity, and the reflector is located on the light path of light source irradiation light. Since the electronic candle is equipped with the reflector, the light source does not directly emit light to the flame simulation spare, but indirectly irradiates light to the flame simulation spare through the reflection of the reflector, the reflector can change the irradiation route of light, and also can play the role of condensing light, makes the light emitted by the light source gather and irradiate to the flame simulation spare, improves the light concentration of the flame simulation spare, and the flame simulation spare can reflect higher intensity light for external illumination, has better lighting effect, and, the focusing effect of reflector can also form the light spot on the flame simulation spare, and the light spot presents on the flame simulation spare, makes the flame simulation spare more realistic, improves the simulation of electronic candle.
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Description

Technical Field

[0001] This utility model relates to the field of electronic lighting technology, specifically to an electronic candle. Background Technology

[0002] Electronic candles, also known as LED candles, have evolved from simple candle-shaped LED wicks to electronic musical fountain candles that can simulate fountain sounds. Their functions, colors, and styles have become increasingly diverse. They not only offer practical and safe lighting but also possess aesthetic and decorative value. Electronic candles that simulate real fire, because their light-emitting devices mimic the burning pattern of traditional mineral candles, can create a tranquil and peaceful atmosphere, promoting relaxation and making them very popular. More and more people are choosing them as decorative items.

[0003] Currently, electronic candles are illuminated by tilting the light from below one side of the flame plate. However, this method fails to distribute the light relatively evenly across the flame plate, resulting in weak light reception and generally low brightness when the light is reflected back to the outside world, thus leading to mediocre lighting effects. Utility Model Content

[0004] This invention provides an electronic candle and a new lighting method to solve the problem of weak light reception on the flame.

[0005] In one embodiment, an electronic candle is provided, comprising:

[0006] The housing has a mounting cavity;

[0007] A flame simulator is installed inside the mounting cavity;

[0008] A light source, installed inside the mounting cavity, is used to emit light.

[0009] A reflector is installed inside the mounting cavity. The reflector is located in the optical path of the light emitted by the light source. The reflector is used to reflect and focus the light emitted by the light source onto the flame simulator.

[0010] In one embodiment, the reflector includes a concave reflective surface for reflecting light emitted by the light source.

[0011] In one embodiment, the reflective surface is provided with a reflective coating.

[0012] In one embodiment, the flame simulator includes a first reflective surface and a second reflective surface facing away from each other. The first reflective surface and the second reflective surface are both located on the optical path of the light reflected by the reflector. The reflector is used to reflect the light emitted by the light source to the first reflective surface and the second reflective surface of the flame simulator.

[0013] In one embodiment, the focal point of the light reflected by the reflector is located on the flame simulator.

[0014] In one embodiment, the light source is located between the flame simulator and the reflector, with the light source facing the reflector and away from the flame simulator.

[0015] In one embodiment, the mounting cavity includes a first mounting cavity and a third mounting cavity, the flame simulator is located in the first mounting cavity, and the light source and the reflector are located in the third mounting cavity; a transparent partition or through hole is provided between the first mounting cavity and the third mounting cavity.

[0016] In one embodiment, in the use state, the first mounting cavity is located below the third mounting cavity.

[0017] In one embodiment, the outer wall of the first mounting cavity is a transparent structure.

[0018] In one embodiment, in the use state, the first mounting cavity is located above the third mounting cavity.

[0019] According to the above embodiment of the electronic candle, since the electronic candle is equipped with a reflector, the light source does not directly emit light onto the flame simulator, but indirectly illuminates the flame simulator through the reflection of the reflector. The reflector can not only change the path of the light, but also play a focusing role, allowing the light emitted by the light source to focus on the flame simulator, thereby increasing the light concentration of the flame simulator. The flame simulator can reflect higher intensity light for external lighting, resulting in better lighting effect. Furthermore, the focusing effect of the reflector can also form a light spot on the flame simulator, making the flame simulator more realistic and improving the simulation of the electronic candle.

[0020] Furthermore, the reflector has a concave reflective surface, which can simultaneously illuminate the first and second reflective surfaces of the flame simulator, achieving multi-angle illumination of the flame simulator. This allows a single light source to illuminate both sides of the flame simulator simultaneously, resulting in better lighting effects.

[0021] Preferably, the reflector is a concave spherical mirror, which can illuminate the flame simulator 360 degrees, allowing the flame simulator to be illuminated in any swinging position. Attached Figure Description

[0022] Figure 1 This is a schematic diagram of the structure of an electronic candle in one embodiment;

[0023] Figure 2 This is an axial cross-sectional view of an electronic candle in one embodiment;

[0024] Figure 3 This is a schematic diagram of the structure of a reflector reflecting light in one embodiment;

[0025] Figure 4 This is a schematic diagram of the structure of an electronic candle in one embodiment;

[0026] Figure 5 This is an axial cross-sectional view of an electronic candle in one embodiment.

[0027] The accompanying diagrams are labeled as follows:

[0028] 1-Housing, 11-Mounting cavity, 111-First mounting cavity, 112-Second mounting cavity, 113-Third mounting cavity, 12-First housing, 13-Second housing, 14-Connector, 15-Rolling cavity;

[0029] 2-Flame simulation component, 21-Flame section, 211-First reflective surface, 212-Second reflective surface, 22-Connecting part, 23-Flame simulation component support;

[0030] 3-Light source, 31-Light source mounting base;

[0031] 4-Reflector, 41-Reflector bracket;

[0032] 5-Random drive component, 51-Electromagnetic drive component, 511-Circuit board, 512-Electromagnetic coil, 52-Magnetic rolling component, 53-Magnetic driven component. Detailed Implementation

[0033] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. Similar elements in different embodiments are referred to by related similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of the present application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to the present application are not shown or described in the specification. This is to avoid obscuring the core parts of the present application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.

[0034] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.

[0035] The component serial numbers used in this document, such as "first" and "second," are merely for distinguishing the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages). In this document, the axial direction refers to the length of the electronic candle, which is also the vertical direction in the installed state; the radial direction refers to the left-right or front-back direction of the electronic candle, which is also the horizontal direction in the installed state.

[0036] In one embodiment, an electronic candle is provided, which includes a flame simulator, a light source, and a reflector. The reflector is located in the light path of the light source, while the flame simulator is located at the focal point of the reflection by the reflector. The light source indirectly illuminates the flame simulator through the reflector. The reflector not only changes the path of the light, allowing the light source to be placed in a more convenient installation position, simplifying and facilitating the installation of the light source, but also acts as a light-focusing mirror, concentrating the light emitted by the light source onto the flame simulator, increasing the light concentration of the flame simulator. The flame simulator can reflect higher intensity light for external illumination, resulting in better lighting effects. Furthermore, the focusing effect of the reflector can also form a light spot on the flame simulator, making the flame simulator more realistic and improving the simulation of the electronic candle.

[0037] The reflector can be set as a concave spherical mirror or cylindrical mirror. The reflector can simultaneously illuminate the first and second reflective surfaces of the flame simulator, achieving 360-degree or 180-degree illumination of the flame simulator. This allows a single light source to illuminate both sides of the flame simulator simultaneously, resulting in better lighting effects.

[0038] Preferably, the reflector is a spherical mirror, which can illuminate the flame simulator 360 degrees, allowing the flame simulator to be illuminated in any swinging position.

[0039] Please refer to Figures 1 to 3 The electronic candle in this embodiment mainly includes a housing 1, a flame simulation component 2, a light source 3, and a reflector 4.

[0040] The housing 1 can be composed of multiple parts, allowing different parts to be made of different materials, creating a wider variety of color combinations. Different parts of the housing 1 can also use the same color for a simpler overall look. The multiple parts of the housing 1 facilitate the installation of internal components. These parts can also be detachable for easy disassembly and maintenance of the internal components; alternatively, the housing 1 can be non-detachable, designed as a disposable product. The unibody structure of the housing 1 provides higher structural stability and sealing, offering better protection for the internal components. The housing 1 can have various shapes to suit different consumer preferences. This embodiment uses a long cylindrical shape as an example. The electronic candle can also be installed in various ways, such as suspended upside down or vertically facing upwards. This embodiment uses suspended upside down as an example.

[0041] The housing 1 has a mounting cavity 11, which includes a first mounting cavity 111 and a third mounting cavity 113. The housing 1 includes a first housing 12 and a second housing 13. The first mounting cavity 111 is located within the first housing 12, and the third mounting cavity 113 is located within the second housing 13. The first housing 12 and the second housing 13 are fixedly connected by means of snap-fit, screw connection, interference fit, etc. The first housing 12 can be used alone to form the first mounting cavity 111, and the first housing 12 and the second housing 13 together form the third mounting cavity 113. The first housing 12 and the second housing 13 are each composed of multiple components for easy assembly and disassembly. Alternatively, the third mounting cavity 113 can also be formed solely by the second housing 13.

[0042] In this embodiment, the flame simulator 2 is installed in the first mounting cavity 111, and the light source 3 and the reflector 4 are installed in the third mounting cavity 113. By separating the flame simulator 2 from the light source 3 and the reflector 4 into different mounting cavities, other modifications can be made to the flame simulator 2, such as filling the first mounting cavity 111 with other media to create richer lighting effects.

[0043] The flame simulator 2 is oscillatingly mounted in the first mounting cavity 111. Correspondingly, the housing 1 is provided with an electromagnetic drive mechanism or a mechanical drive structure. The electromagnetic drive mechanism is used to drive the flame simulator 2 to oscillate non-contactly through electromagnetic force, while the mechanical drive structure is used to drive the flame simulator 2 to oscillate through mechanical contact.

[0044] The flame simulator 2 has a thin sheet structure with a thickness of less than or equal to 1 mm, preferably less than or equal to 0.6 mm. This design creates an ultra-thin structure, giving the flame simulator 2 better flexibility. When immersed in liquid, the ultra-thin flame simulator 2 can sway and move more flexibly and naturally within the liquid, enhancing the simulation and making it more closely resemble the flame of a traditional candle.

[0045] The flame simulator 2 can be made of a reflective material, such as PET or PVC. When a light source shines on the flame simulator 2, the reflection it produces can create a self-illuminating effect, simulating the flame of a traditional candle.

[0046] The first housing 12 is wholly or partially transparent or semi-transparent, allowing the flame simulator 2 to illuminate the outside of the electronic candle. The second housing 13 is preferably opaque to prevent light emitted by the light source 3 from leaking out of the second housing 13, which helps to increase the light intensity of the flame simulator 2.

[0047] Please refer to Figure 2 The flame simulator 2 can be in the form of a flame sheet or similar structure. The flame simulator 2 includes a flame section 21 and a connecting section 22. The flame section 21 is a flame sheet structure and has a first reflective surface 211 and a second reflective surface 212 facing away from each other. The first reflective surface 211 and the second reflective surface 212 can be provided with reflective layers such as mirrors or reflective adhesive. The first reflective surface 211 and the second reflective surface 212 can reflect light to form an electronic candle, achieving illumination. The connecting section 22 can be a rod-shaped or rope-shaped structure.

[0048] A flame simulator bracket 23 is provided within the first mounting cavity 111. The flame simulator bracket 23 is suspended within the first mounting cavity 111, for example, the flame simulator bracket 23 is a mounting plate. The flame simulator bracket 23 divides the first mounting cavity 111 into an upper part and a lower part. A mounting hole 231 may be provided in the middle of the flame simulator bracket 23. The connecting part 22 of the flame simulator 2 passes through and is installed in the mounting hole 231 of the flame simulator bracket 23. The upper end of the connecting part 22 is located in the upper part of the first mounting cavity 111, and the lower end of the connecting part 22 is located in the lower part of the first mounting cavity 111. The flame part 21 is installed at the upper end of the connecting part 22, and the flame part 21 is located in the upper part of the first mounting cavity 111. The connecting part 22 can be limited and swing-connected with the flame simulator bracket 23 by a limiting member, so that the flame part 21 can swing relative to the flame simulator bracket 23 through the connecting part 22.

[0049] In this embodiment, a magnetic block can be provided at the lower end of the connecting part 22 of the flame simulator 2 (the end away from the flame part 21), and an electromagnetic drive is provided in the mounting cavity 11 of the electronic candle. The electromagnetic drive drives the magnetic block to swing, thereby driving the flame simulator 2 to swing, so as to realize the swing simulation lighting of the flame simulator 2.

[0050] In other embodiments, a mechanical drive structure such as a motor and a transmission assembly is provided in the mounting cavity 11 of the electronic candle. The transmission assembly is connected to the lower end of the connection part 22 of the flame simulation component 2. The motor drives the flame simulation component 2 to swing through the transmission assembly, which can also realize the swing simulation lighting of the flame simulation component 2.

[0051] In other embodiments, the flame simulator 2 can also be fixedly installed inside the mounting cavity 11, which can also achieve a certain level of simulated lighting.

[0052] In this embodiment, the light source 3 can be an LED lamp bead or other light source. The light source 3 emits light away from the flame simulation component 2. The light emitted by the light source 3 does not directly illuminate the flame simulation component 2. The light source 3 illuminates the flame simulation component 2 through the reflector 4.

[0053] The light source 3 can also be directly installed in the third mounting cavity 113, which can also be equipped with a light source mounting bracket on which the light source 3 is mounted. The light source 3 is electrically connected to the circuit board inside the electronic candle, which is used to control the lighting operation of the light source 3.

[0054] In other embodiments, a light source mounting base 31 may be provided within the third mounting cavity 113. The light source 3 is mounted on the light source mounting base 31. The light source mounting base 31 has mounting holes or other mounting structures in its central part. The light source 3 is mounted within the mounting holes or other mounting structures in the central part of the light source mounting base 31. The light source mounting base 31 mounts the light source 3 in the central position of the third mounting cavity 113, so that the light source 3 and the flame simulation element 2 are aligned along the axial direction of the electronic candle. The light source mounting base 31 can be made of a material with good thermal conductivity, such as aluminum. This arrangement can improve the heat dissipation effect of the light source 3, ensuring that the light source 3 operates within a suitable temperature environment and extending the service life of the electronic candle.

[0055] The reflector 4 is installed in the optical path of the light source 3, with the reflective surface of the reflector 4 facing the direction in which the light source 3 emits light, and the light source 3 emits light towards the reflective surface of the reflector 4.

[0056] The third mounting cavity 113 is equipped with a reflector bracket 41, which can be a cylindrical structure. One end or the outer periphery of the reflector bracket 41 is fixedly connected to the second housing 13 by means of snap-fit, bonding, interference fit, etc. The reflector 4 is installed at the other end of the reflector bracket 41. The reflector bracket 41 is located between the light source 3 and the reflector 4. The light emitted by the light source 3 passes through the reflector bracket 41 and shines on the reflector 4. The reflector 4 then reflects the light, and the reflected light passes through the reflector bracket 41 and enters the first mounting cavity 111. The reflector bracket 41, located between the light source 3 and the reflector 4, also serves to isolate the light, preventing the light emitted by the light source 3 from entering other areas within the third mounting cavity 113. This facilitates the reflector 4 in reflecting and focusing the light emitted by the light source 3 onto the flame part 21 of the flame simulator 2.

[0057] Preferably, the reflector 4 covers and seals one end of the reflector bracket 41, which can further prevent the light emitted by the light source 3 from entering other areas within the third mounting cavity 113, and improve the reflector 4's ability to reflect and focus the light emitted by the light source 3 onto the flame simulator 2.

[0058] In other embodiments, the reflector bracket 41 can also be of other structures. When the volume of the third mounting cavity 113 is relatively small, the reflector bracket 41 can adopt a hollow bracket structure, which can also fix the reflector 4. Furthermore, the light leakage rate of the light emitted by the light source 3 is relatively low. The reflector 4 can also reflect and concentrate most of the light emitted by the light source 3 onto the flame simulation component 2, thereby improving the external illumination brightness of the flame simulation component 2.

[0059] In other embodiments, the reflector bracket 41 and the light source mounting base 31 can be an integral structure, or the reflector bracket 41 can be mounted on the light source mounting base 31.

[0060] In this embodiment, the reflector 4 is a concave reflector. The concave spherical mirror has the function of focusing light, which can concentrate the light emitted by the light source 3 and then irradiate the flame simulation component 2, thereby increasing the concentration of light on the flame simulation component 2.

[0061] The flame simulator 2 is located at the focal point of the light path emitted by the reflector 4. Preferably, the middle position of the first reflective surface 211 and the second reflective surface 212 of the flame simulator 2 is located at the focal point of the light path emitted by the reflector 4, which can maximize the concentration of the light emitted by the light source 3 onto the flame simulator 2 and improve the brightness of the flame simulator 2's external illumination. Of course, other positions of the first reflective surface 211 and the second reflective surface 212 of the flame simulator 2 located at the focal point of the light path emitted by the reflector 4 can also concentrate the light emitted by the light source 3 onto the flame simulator 2 and improve the brightness of the flame simulator 2's external illumination.

[0062] In this embodiment, the reflector 4 is preferably a concave spherical mirror. The concave spherical mirror structure can illuminate the flame simulator 2 from the light source 3 in a 360° direction. It can simultaneously illuminate both the first reflective surface 211 and the second reflective surface 212. Even when the flame simulator 2 rotates and swings, it can still ensure that the light is simultaneously illuminated on both reflective surfaces 211 and 212. This configuration not only ensures concentrated illumination of both sides of the flame simulator 2, but also allows for better simulation by coordinating with the rotation and swing of the flame simulator 2.

[0063] In other embodiments, the reflector 4 can also be a concave curved mirror with a cylindrical surface structure. This curved mirror can direct the light emitted by the light source 3 from the flame simulator 2 at a 180° angle onto the flame simulator 2. When the central axis of the curved mirror is located on the central surface of the flame simulator 2 (the surface between the first reflective surface 211 and the second reflective surface 212), the curved mirror can simultaneously direct the light emitted by the light source 3 onto both the first and second reflective surfaces 211 and 212. In this structure, the flame simulator 2 is relatively fixed and can swing, but cannot rotate along the axial direction, thus ensuring concentrated illumination from both sides of the flame simulator 2.

[0064] In this embodiment, the flame simulator 2, the light source 3, and the reflector 4 are arranged vertically and aligned along a central axis. The light source 3 is located between the flame simulator 2 and the reflector 4, avoiding the reflection focus of the reflector 4, while the flame simulator 2 is positioned at the reflection focus of the reflector 4. With this arrangement, the reflector 4 can reflect almost all the light from the light source 3 onto the flame simulator 2, improving the concentration of light received by the flame simulator 2.

[0065] In other embodiments, the flame simulator 2, the light source 3, and the reflector 4 can also be slightly offset and aligned on a central axis, which can also improve the concentration of light received by the flame simulator 2.

[0066] In this embodiment, since the electronic candle is equipped with a reflector 4, the light source 3 does not directly emit light onto the flame simulator 2, but indirectly illuminates the flame simulator 2 through the reflection of the reflector 4. The reflector 4 can not only change the path of the light, but also play a concentrating role, so that the light emitted by the light source 3 is focused onto the flame simulator 2, thereby increasing the light concentration of the flame simulator 2. The flame simulator 2 can reflect higher intensity light for external lighting, and has a better lighting effect.

[0067] In one embodiment, the flame simulator 2, the light source 3, and the reflector 4 can also be installed in the same mounting cavity. The reflector 4 can also focus and reflect the light emitted by the light source 3 onto the flame simulator 2, thereby increasing the external illumination brightness of the flame simulator 2.

[0068] In one embodiment, the electronic candle further includes a random drive component 5, which is a magnetic drive mechanism. The random drive component 5 is used to drive the flame simulation component 2 to swing randomly, so as to improve the realism of driving the flame simulation component 2 and make it closer to the dynamic flame of a traditional candle, thereby enhancing the visual appeal of the electronic candle.

[0069] The mounting cavity 11 also includes a second mounting cavity 112, and the housing 1 also includes a rolling cavity 15. The first mounting cavity 111, the second mounting cavity 112, the third mounting cavity 113 and the rolling cavity 15 are independent of each other.

[0070] The random drive assembly 5 includes an electromagnetic drive 51, a magnetic rolling element 52, and a magnetic follower 53. The electromagnetic drive 51 is installed in the mounting cavity 11, and the magnetic rolling element 52 is installed in the rolling cavity 15, allowing the magnetic rolling element 52 to roll within the rolling cavity 15. The magnetic follower 53 is connected to the end of the connection portion 22 of the flame simulator 2 away from the flame portion 21, and the magnetic follower 53 and the flame simulator 2 are installed as a single unit. The magnetic follower 53 is located in the lower part of the first mounting cavity 111. The electromagnetic drive 51 generates a magnetic field using electromagnetic methods to drive the magnetic rolling element 52 to roll randomly within the rolling cavity 15. The magnetic rolling element 52 and the magnetic follower 53 have the same or different magnetic properties, and there is a magnetic attraction or repulsion between them. When the magnetic rolling element 52 is driven to roll, its rolling motion can drive the magnetic follower 53 to move together through magnetic force, thereby causing the flame simulator 2 to swing randomly.

[0071] The electromagnetic drive component 51 is installed in the second mounting cavity 112. The electromagnetic drive component 51 and the flame simulation component 2 are installed in different cavities and are independent of each other. This can avoid the heat generated by the flame simulation component 2 from affecting the electromagnetic drive component 51 and improve the service life of the electronic candle.

[0072] The electromagnetic drive unit 51 includes a circuit board 511 and an electromagnetic coil 512. The circuit board 511 is electrically connected to the electromagnetic coil 512. The circuit board 511 is used to control the electromagnetic coil 512 to generate a magnetic field. One or more driving methods can be preset in the circuit board 511, including an irregular random driving method to control the electromagnetic coil 512 to drive the magnetic rolling element 52 to move irregularly and randomly within the rolling cavity 15. Of course, the circuit board 511 can also be equipped with a regular driving method to control the electromagnetic coil 512 to drive the magnetic rolling element 52 to move regularly within the rolling cavity 15.

[0073] In other embodiments, the electronic candle further includes a mechanical drive mechanism, which may include a worm gear assembly or a multi-link assembly, etc., for directly driving the oscillation of the flame simulator 2. The mechanical drive mechanism can be installed within the mounting cavity where the flame simulator 2 is located.

[0074] Please refer to Figure 1 and Figure 2 In one embodiment, the electronic candle has a vertically downward-hanging mounting structure. The top outer side of the housing 1 has a connector 14 for suspending the electronic candle on an inverted lamp holder. The connector 14 may have a threaded connection structure and an electrical contact point, which can be electrically connected to a circuit board via a cable or other structure. When the connector 14 is connected to the lamp holder, both physical and electrical connections are achieved. This type of electronic candle can be mounted on a ceiling or wall.

[0075] In this structure, the first mounting cavity 111 is located below the third mounting cavity 113, and the flame simulator 2 is mounted at the bottom of the electronic candle. The bottom-mounted flame simulator 2 is more advantageous for downward illumination. The outer wall and perimeter of the first mounting cavity 111 are transparent, allowing light emitted from the light source 3 to be reflected by the reflector 4 into the first mounting cavity 111 and onto the flame simulator 2. The transparent perimeter of the first mounting cavity 111 also allows the flame simulator 2 to illuminate outwards from all directions.

[0076] The lower end of the outer wall of the first mounting cavity 111 can also be made into a transparent structure so that the flame simulation component 2 can directly illuminate the outside with light downwards.

[0077] In one embodiment, the connector 14 may also be provided with a physical connection structure such as a snap-fit ​​structure or a magnetic structure to fix the connector 14 to the lamp holder.

[0078] Preferably, the connector 14 is the same size and model as other conventional lamps, so that the electronic candle can be directly installed on the socket of conventional lamps, thus expanding the application scenarios of the electronic candle.

[0079] Please refer to Figure 4 and Figure 5 In one embodiment, an electronic candle is provided, which is used to be mounted vertically upward on a lamp holder.

[0080] In this embodiment, the first mounting cavity 111 is located above the third mounting cavity 113, and the flame simulator 2 is mounted on the top of the electronic candle. The flame simulator 2 located at the top is more conducive to upward illumination. The outer wall of the first mounting cavity 111 is transparent, and the surrounding area of ​​the first mounting cavity 111 is also transparent, allowing the light emitted by the light source 3 to be reflected by the reflector 4 into the first mounting cavity 111 and onto the flame simulator 2. The transparent surrounding area of ​​the first mounting cavity 111 also allows the flame simulator 2 to illuminate outwards from all directions.

[0081] In this structure, the flame simulator support 23 is a transparent structure, or the flame simulator support 23 has a hollow through hole or opening, so that the light reflected by the reflector 4 can pass through the flame simulator support 23 and illuminate the flame simulator 2.

[0082] The upper outer wall of the first mounting cavity 111 can also be made into a transparent structure so that the flame simulation component 2 can directly illuminate the outside with light.

[0083] The bottom outer side of the housing 1 may be provided with a connector 14, which is used to install the electronic candle vertically upward on the lamp holder. This structure allows the electronic candle to be mounted on a table or other support or on a wall.

[0084] In one embodiment, the connector 14 can also be disposed on the side of the housing 1, and the connector 14 and the housing 1 form an L-shaped inverted T-shaped structure, which can also realize the physical installation and electrical connection of the electronic candle.

[0085] The above-described specific examples are for illustrative purposes only and are not intended to limit the scope of this invention. Those skilled in the art to which this invention pertains can make various simple deductions, modifications, or substitutions based on the concept of this invention.

Claims

1. An electronic candle, characterized in that, include: The housing has a mounting cavity; A flame simulator is installed inside the mounting cavity; A light source, installed inside the mounting cavity, is used to emit light. A reflector is installed inside the mounting cavity. The reflector is located in the optical path of the light emitted by the light source. The reflector is used to reflect and focus the light emitted by the light source onto the flame simulator.

2. The electronic candle as described in claim 1, characterized in that, The reflector includes a concave reflective surface for reflecting light emitted by the light source.

3. The electronic candle as described in claim 2, characterized in that, The reflective surface is provided with a reflective coating.

4. The electronic candle as described in claim 2, characterized in that, The flame simulator includes a first reflective surface and a second reflective surface facing away from each other. Both the first reflective surface and the second reflective surface are located on the light path of the light reflected by the reflector. The reflector is used to reflect the light emitted by the light source to the first reflective surface and the second reflective surface of the flame simulator.

5. The electronic candle as described in claim 2, characterized in that, The focal point of the light reflected by the reflector is located on the flame simulator.

6. The electronic candle as described in claim 2, characterized in that, The light source is located between the flame simulator and the reflector, with the light source facing the reflector and away from the flame simulator.

7. The electronic candle according to any one of claims 1 to 6, characterized in that, The mounting cavity includes a first mounting cavity and a third mounting cavity. The flame simulation component is located in the first mounting cavity, and the light source and the reflector are located in the third mounting cavity. A transparent partition or through hole is provided between the first mounting cavity and the third mounting cavity.

8. The electronic candle as described in claim 7, characterized in that, In use, the first mounting cavity is located below the third mounting cavity.

9. The electronic candle as described in claim 7, characterized in that, The outer wall of the first mounting cavity is a transparent structure.

10. The electronic candle as described in claim 7, characterized in that, In use, the first mounting cavity is located above the third mounting cavity.