A highly realistic electronic flame decorative lamp

By cross-setting the atomizer and light emitter components, the Tyndall effect is generated, which solves the problems of unstable discharge, insufficient brightness, high power consumption and large size of existing flame decorative lights, and realizes a flame decorative light with high simulation and portability.

CN224284558UActive Publication Date: 2026-05-26卢能晓

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
卢能晓
Filing Date
2025-06-18
Publication Date
2026-05-26

AI Technical Summary

Technical Problem

Existing flame decorative lights suffer from problems such as unstable discharge, insufficient brightness, high power consumption, large size, and noise, making it difficult to achieve high simulation and portability.

Method used

By employing atomizer and light emitter components, an atomized light spot area is formed. The Tyndall effect is generated by the angled arrangement between the spray section and the focusing projection section, creating a flame-like light effect with clear boundaries.

Benefits of technology

It achieves a highly realistic flame light effect, improves brightness and portability, reduces energy consumption, and reduces device size and noise.

✦ Generated by Eureka AI based on patent content.

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Abstract

This utility model discloses a highly realistic electronic flame decorative light, including a base, an atomizer assembly, and a light emitter assembly. The atomizer assembly and the light emitter assembly are installed within the base. The atomizer assembly has a spray section, and the light emitter assembly has a focusing projection section. The spray section and the focusing projection section are arranged at an angle, and the beam of light with a clear boundary projected from the focusing projection section intersects with a portion of the atomized area in the spray section, forming a misted light spot area. This utility model optimizes the use of the atomizer assembly and the light emitter assembly to form a misted light spot area, thereby producing a Tyndall effect and achieving a flame-like light effect.
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Description

Technical Field

[0001] This utility model relates to the field of decorative lighting technology, and in particular to a highly realistic electronic flame decorative light. Background Technology

[0002] As people's living standards continue to improve, while satisfying their material needs, people's requirements for beauty are also constantly increasing. Festival decorative lights are becoming increasingly popular due to their diverse shapes, colorful flashing lights, and excellent nighttime lighting and decoration effects. In particular, in order to adapt to people's ever-improving appreciation level, decorative lights have evolved from the initial monotonous flat decorative lights to the rich and colorful three-dimensional decorative lights of today.

[0003] Flame decorative lights are a type of existing holiday decoration, primarily designed to create simulated flame shapes, such as electronic candles and misting fireplaces. Current flame decorative lights typically use bulbs filled with the inert gas neon. The two electrodes are shaped like leaf blades, which represent the shape of a flame. When an alternating current is passed through the bulb, the neon gas discharges and emits light. Due to the large electrode area, the distance between various points on the two electrodes cannot be perfectly equidistant, resulting in unstable discharge positions that cause flickering and movement, creating the illusion of a flame.

[0004] Because of its glass casing, the flame-shaped light bulb looks like a regular light bulb, and the reflective glass lacks the realism of a flame. Secondly, since the discharge occurs between two electrode plates, the brightness is low due to the obstruction of the plates, and viewing it is also directionally limited. Furthermore, because this type of bulb requires alternating current, which has high voltage and high power consumption, it is only suitable for making fixed candlesticks, not for battery-powered, movable decorative lights.

[0005] Some decorative lights use flame-shaped plastic lampshades with built-in LED beads to create simulated flame lights, but their shapes are stiff and their simulation is very low.

[0006] Atomizing simulated fireplaces use ultrasonic waves or high-pressure water pumps to atomize water, then place lights below the atomized mist to illuminate it, creating the visual effect of a large cluster of flames. Because the atomized mist forms a large, continuous area, and because it doesn't dissipate easily, its height is generally around 20-30cm. Since simulated fireplaces have multiple flames and a large overall size, the mist appears relatively small compared to the fireplace itself, closely mimicking the characteristics of fireplace flames, making it quite realistic from a distance. However, some atomizing simulated fireplaces require fans to prevent the mist from falling and accumulating, increasing the overall size of the unit and generating wind noise during operation. Utility Model Content

[0007] To address the aforementioned issues, this invention aims to provide a highly realistic electronic flame decorative lamp, which employs an atomizer assembly and a light emitter assembly to form an atomized light spot area, thereby generating the Tyndall effect and achieving a flame-like light effect.

[0008] The technical problem solved by this utility model can be achieved by the following technical solution:

[0009] A highly realistic electronic flame decorative light includes a base, an atomizer assembly, and a light emitter assembly. The atomizer assembly and the light emitter assembly are installed in the base. The atomizer assembly has a spray section, and the light emitter assembly has a focusing projection section. The spray section and the focusing projection section are arranged at an angle to each other. The light beam with a clear boundary projected from the focusing projection section intersects with a portion of the atomized area in the spray section, forming an atomized light spot area.

[0010] The light-emitting component includes an electric light source, a lens, and a light shield. The front end of the light shield is the light-concentrating projection part. The electric light source is located below the lens. The light emitted by the electric light source is focused by the lens and then projected outward through the inner cavity of the light shield to the light-concentrating projection part.

[0011] The inner cavity of the light shield is provided with a light-absorbing wall, which is used to absorb scattered light, so that the beam of light projected outward has a clear boundary.

[0012] The light-emitting component includes an electric light source and a light shield. The inner wall of the light shield has a light-absorbing wall for absorbing scattered light, so that the outwardly projected light beam has a clear boundary.

[0013] The light-emitting assembly includes an electric light source and a lens, with the lens located at the end position. The electric light source focuses the light beam through the lens, so that the outwardly projected light beam has a clear boundary.

[0014] The light-emitting component is a laser lamp.

[0015] A single atomizer assembly is used in conjunction with at least one luminaire assembly.

[0016] The angle between the spray section of the atomizer assembly and the focusing projection section of the light emitter assembly is 25°~65°.

[0017] The atomizer assembly includes a water inlet and an atomizing nozzle. The water inlet supplies water to the atomizing nozzle, and the atomizing nozzle sprays water mist outward through the spray section.

[0018] The atomizer assembly is a smoke generator.

[0019] The advantages of this invention over the prior art are as follows: This invention optimizes the use of atomizer components and light emitter components to form an atomized light spot area, thereby producing the Tyndall effect and achieving a flame-like light effect; by utilizing the angled intersection between the spray section and the focusing projection section, the beam illuminates part of the atomized area, which facilitates the formation of a flame-like light spot with a clear boundary, thus improving the overall light effect.

[0020] The features of this utility model can be clearly understood by referring to the drawings and the following detailed description of the preferred embodiments. Attached Figure Description

[0021] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0022] Figure 2 This is a schematic diagram of the arrangement structure of the atomizer assembly and the light emitter assembly of this utility model. Figure 1 ;

[0023] Figure 3 This is a schematic diagram of the arrangement structure of the atomizer assembly and the light emitter assembly of this utility model. Figure 2 ;

[0024] Figure 4 This is a schematic diagram of the arrangement structure of the atomizer assembly and the light emitter assembly of this utility model. Figure 3 ;

[0025] Figure 5 This is a schematic diagram of the arrangement structure of the atomizer assembly and the light emitter assembly of this utility model. Figure 4 ;

[0026] Figure 6 This is a schematic diagram of the arrangement structure of the atomizer assembly and the light emitter assembly of this utility model. Figure 5 ;

[0027] Figure 7 This is a schematic diagram of the structure of the light emitter assembly of this utility model. Figure 1 ;

[0028] Figure 8 This is a schematic diagram of the structure of the light emitter assembly of this utility model. Figure 2 ;

[0029] Figure 9 This is a schematic diagram of the structure of the light emitter assembly of this utility model. Figure 3 ;

[0030] Figure 10 This is a schematic diagram of the structure of the light emitter assembly of this utility model. Figure 4 ;

[0031] Figure 11 This is a schematic diagram of the structure of the light emitter assembly of this utility model. Figure 5 ;

[0032] Figure 12 This is a schematic diagram of the atomizer assembly structure of this utility model. Detailed Implementation

[0033] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the following description, in conjunction with specific illustrations, further elaborates on this utility model.

[0034] Combination Figures 1 to 12 As shown, this utility model discloses a highly realistic electronic flame decorative lamp, including a shaped base 500, an atomizer assembly 300 and a light emitter assembly 400. The shaped base 500 is usually shaped with flame elements according to the needs of the decorative lamp, and can also be candle, fireplace, volcano, flame emitter, etc.; a single atomizer assembly 300 is matched with at least one light emitter assembly 400, and can be set up according to different specifications.

[0035] In conjunction with the above, the atomizer assembly 300 and the emitter assembly 400 are mounted within the shaping base 500. The atomizer assembly 300 is provided with a spray section 301, and the emitter assembly 400 is provided with a focusing projection section 401. The spray section 301 and the focusing projection section 401 are arranged at an angle to each other. The light beam 800 projected from the focusing projection section 401 intersects with a portion of the atomization area 200 in the spray section 301, forming an atomized light spot area 100. The emitter assembly 400 is used to realize the light beam... The projection of 800 utilizes the focusing projection unit 401 to form a beam 800 with a clear boundary. The spray unit 301 forms a misting area 200. The angle between the spray unit 301 and the focusing projection unit 401 creates a misting spot area 100. When the beam 800 intersects with part of the misting area 200, the Tyndall effect is generated, resulting in a flame-like light spot with clear boundaries and varying brightness and shape, thus achieving a flame-like light effect.

[0036] In one preferred embodiment, the light emitter assembly 400 includes an electric light source 430, a lens 420, and a light shield 410. The end of the light shield 410 is a focusing projection part 401. The electric light source 430 is located below the lens 420. The electric light source 430 projects the light beam 800 from the inner cavity of the light shield 410 outward to the focusing projection part 401 through the lens 420. A light-absorbing wall 411 is provided in the inner cavity of the light shield 410 to focus and project the light beam 800. The electric light source 430 is preferably an LED lamp, and the electric light source 430 is usually mounted in conjunction with a lamp holder.

[0037] LED lights can use LEDs with a power rating of 0.5W. Because the light-emitting chip in an LED is not a point but a small surface, such as a 0.5W LED with a chip area of ​​approximately 1 square millimeter, the emitted light is not emitted from a single point but from multiple points. After being refracted by a lens, this light, when projected onto an object, still has concentric rings of diffused light around the main beam.

[0038] To address this issue, the embodiment employs a light shield to absorb scattered light along the outer edge of the focused beam, such as... Figure 7 As shown, the astigmatic light is absorbed by the wall of the light shield because it is oriented differently from the wall of the light shield. It cannot be emitted from the front end of the light shield, so the light beam has a clear boundary after it is emitted from the light shield.

[0039] After the above technical processing, the light beam emitted by the light source component intersects with the mist sprayed by the atomizer component to produce the Tyndall effect, resulting in a light spot with clear boundaries and varying brightness and shape, which is more in line with the characteristics of clear brightness and darkness of candle flame boundaries.

[0040] In one preferred embodiment, the light emitter assembly 400 includes an electric light source 430 and a light shield 410. The inner wall of the light shield 410 has a light-absorbing wall 411, which is used to focus and project the light beam 800. This solution is suitable for low-cost products. It uses the light-absorbing wall 411 in the inner cavity of the light shield 410 to focus the light source formed by the electric light source 430 and then project it. The projection effect of the light beam 800 is relatively ordinary, but its overall manufacturing is simpler. The electric light source 430 is preferably an LED lamp.

[0041] In one preferred embodiment, the light emitter assembly 400 includes an electric light source 430 and a lens 420. The electric light source 430 focuses the light beam 800 outward through the lens 420. The electric light source 430 is preferably an LED lamp. After the electric light source 430 forms illumination, it directly forms a focused light beam outward through the lens and projects it outward through the focused projection part. It can use a low-power LED light-emitting diode, such as a 0.06W LED. Because its chip area is small, only about 0.1 square millimeters, it is closer to a point. It can use the lens to form a focused light beam or a parallel light beam. However, the final flame brightness formed by this solution is low and the appearance is not as good as the aforementioned solutions.

[0042] In one preferred embodiment, the light emitter assembly 400 uses a laser lamp, which has good beam density and brightness. Therefore, the remaining atomized area 200 forms an atomized light spot area 100 with good light sensing effect. The flame-like light spot simulation formed by it has the best effect in all embodiments of this solution; however, it has the problems of relatively high cost and relatively general service life.

[0043] In conjunction with any of the above embodiments, a single atomizer assembly 300 can be used with two or more emitter assemblies 400. By adding emitter assemblies 400, multiple sets of emitter assemblies 400 can be used to focus the light beam, and the focused light beam 800 and the atomization area 200 can form an atomized light spot area 100, which can increase the light sensitivity and form a flame-like light spot with clear boundaries and varying brightness and shape, thereby achieving a flame-like light effect.

[0044] In combination with any of the above embodiments, by using lenses 420 and / or light shields 40 of different specifications, a beam with a clear boundary can be formed. Depending on the shape of the atomized spot area 100, it can be a cross beam, a parallel beam or an outward beam, thereby forming atomized spot areas 100 with different boundary shapes, thus forming different types of flame-like spots.

[0045] Preferably, the angle between the spray section 301 of the atomizer assembly 300 and the focusing projection section 401 of the light emitter assembly 400 is 25° to 65°.

[0046] In accordance with the above, in one preferred embodiment, the atomizer assembly 300 includes a water inlet 700 and an atomizing nozzle 310. The water inlet 700 supplies water to the atomizing nozzle 310, which sprays water mist outward through the spray section 301. The atomizing nozzle 310 can be classified as an ultrasonic atomizing nozzle or a high-pressure jet atomizing nozzle depending on its application. The atomizing nozzle 310, combined with the water inlet 700, forms water mist atomization, employing a commonly used water mist atomization technology in the prior art. In one specific embodiment, combined with... Figure 12 As shown, a water storage section 600 is provided at the lower part of the base 500. The atomizer assembly 300 also includes an atomizer housing 320. The water inlet 700 uses absorbent cotton strips, which are located inside the atomizer housing 320. The lower part of the absorbent cotton strip is used to communicate with the water storage section 600 and to absorb water. The absorbent cotton strip fills the inner cavity of the atomizer housing 320. The upper end face of the atomizer housing 320 is a spray section 301. An atomizing nozzle 310 is provided inside the spray section 301. The atomizing nozzle 310 uses an ultrasonic piezoelectric ceramic 311 and a vibrating plate 312. The ultrasonic piezoelectric ceramic 311 and the vibrating plate 312 are used to ultrasonically vibrate the absorbent cotton strip that has absorbed water to form a water mist, which is then sprayed outward through the atomizing section 301 to form an atomizing area 200.

[0047] In conjunction with the above, in one preferred embodiment, the atomizer assembly 300 employs a smoke generator, which uses components commonly used in the prior art.

[0048] In combination with any of the above embodiments, the light beam 800 projected by the light emitter assembly 400 through the focusing projection section 401 is a light beam 800 with a clear boundary.

[0049] This utility model optimizes the use of an atomizer assembly 300 and a light emitter assembly 400 to form an atomized light spot area 100, which produces a Tyndall effect and achieves a flame-like light effect; by using the angled cross arrangement between the spray section 301 and the focusing projection section 401, the beam 800 illuminates part of the atomized area 200, which facilitates the formation of a flame-like light spot and improves the overall light effect.

[0050] The above description is merely a preferred embodiment of the present utility model and does not constitute any limitation on the utility model. Any simple modifications, equivalent changes, or alterations made to the above embodiments based on the technical principles of the present utility model shall still fall within the scope of the technical solution of the present utility model.

Claims

1. A high simulation electronic flame decorative lamp, comprising a modeling base, a atomizer assembly light-emitting device assembly, characterized in that: The atomizer assembly and the light emitter assembly are installed in the shaped base. The atomizer assembly is provided with a spray section, and the light emitter assembly is provided with a focusing projection section. The spray section and the focusing projection section are arranged at an angle to each other. The light beam with a clear boundary projected in the focusing projection section intersects with a part of the atomization area in the spray section, forming an atomized light spot area.

2. The highly realistic electronic flame decorative lamp according to claim 1, characterized in that: The light-emitting component includes an electric light source, a lens, and a light shield. The front end of the light shield is the light-concentrating projection part. The electric light source is located below the lens. The light emitted by the electric light source is focused by the lens and then projected outward through the inner cavity of the light shield to the light-concentrating projection part.

3. A highly realistic electronic flame decorative lamp according to claim 2, characterized in that: The inner cavity of the light shield is provided with a light-absorbing wall, which is used to absorb scattered light, so that the beam of light projected outward has a clear boundary.

4. A highly realistic electronic flame decorative lamp according to claim 1, characterized in that: The light-emitting component includes an electric light source and a light shield. The inner wall of the light shield has a light-absorbing wall for absorbing scattered light, so that the outwardly projected light beam has a clear boundary.

5. A highly realistic electronic flame decorative lamp according to claim 1, characterized in that: The light-emitting assembly includes an electric light source and a lens, with the lens located at the end position. The electric light source focuses the light beam through the lens, so that the outwardly projected light beam has a clear boundary.

6. A highly realistic electronic flame decorative lamp according to claim 1, characterized in that: The light-emitting component is a laser lamp.

7. A highly realistic electronic flame decorative lamp according to any one of claims 1 to 6, characterized in that: A single atomizer assembly is used in conjunction with at least one luminaire assembly.

8. A highly realistic electronic flame decorative lamp according to claim 7, characterized in that: The angle between the spray section of the atomizer assembly and the focusing projection section of the light emitter assembly is 25°~65°.

9. A highly realistic electronic flame decorative lamp according to claim 8, characterized in that: The atomizer assembly includes a water inlet and an atomizing nozzle. The water inlet supplies water to the atomizing nozzle, and the atomizing nozzle sprays water mist outward through the spray section.

10. A highly realistic electronic flame decorative lamp according to claim 8, characterized in that: The atomizer assembly is a smoke generator.