Energy-saving equipment for building factory

By installing a light guide lighting system with energy-saving cylinders and brightness sensors in the construction factory, the insufficient lighting caused by instability of light is solved, and the storage and utilization of light energy is realized, uniform lighting inside the building is maintained, energy consumption is reduced and production efficiency is improved.

CN223257990UActive Publication Date: 2025-08-22JIANGSU DAHESHENG INTELLIGENT TECH GRP CO LTD
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Patent Information

Application Number
CN202422869475.6
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-08-22
Estimated Expiration
2034-11-22

AI Technical Summary

Technical Problem

The existing light guide lighting system cannot provide sufficient natural light when the light is unstable, resulting in a decrease in the lighting effect of the building, increasing energy consumption and system complexity, especially in industrial operations with strict requirements on lighting conditions, which affects work efficiency and product quality.

Method used

The energy-saving cylinder is installed on the top or exterior wall of the building. The light collector collects sunlight and is uniformly distributed through the light guide tube and the diffuser. Combined with the brightness sensor, the light is converted into electrical energy and stored in the battery by using the auxiliary light collector and light guide tube. The light group compensates for the insufficient brightness, and realizes the storage and utilization of light energy.

Benefits of technology

When the light is unstable, the light energy storage and lamp group compensation are maintained to maintain uniform lighting inside the building, reducing dependence on artificial lighting, reducing energy consumption and improving the stability and efficiency of the production environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses energy-saving equipment for a building factory, which comprises an energy-saving cylinder, a main light collector, a main light guide pipe, a main diffuser, an auxiliary energy component and an auxiliary illumination component, the main light collector is fixedly mounted at the top of the energy-saving cylinder, the main light guide pipe is fixedly mounted on the inner wall of the energy-saving cylinder, and the main diffuser is fixedly mounted on the inner wall of the energy-saving cylinder. And the main diffuser is fixedly mounted at the bottom of the energy-saving cylinder. According to the utility model, the energy-saving cylinder is arranged on the top or the outer wall of a building and faces the direction of the sun, the main light collector collects light rays of the sun, the light rays can be reflected or refracted into the main light guide pipe, then the main diffuser irradiates uniform and soft natural light, and the light rays are uniformly distributed in the whole space; the brightness sensor senses that the brightness emitted by the main diffuser is insufficient, and the lamp set compensates for the insufficient brightness emitted by the main diffuser; the auxiliary energy light collector and the auxiliary energy light guide pipe irradiate light onto the photovoltaic panel, the photovoltaic panel converts light energy into electric energy, and the electric energy is stored in the storage battery.
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Description

Technical Field

[0001] The utility model relates to the technical field of factory energy saving, in particular to an energy-saving device used in a building factory. Background Art

[0002] Energy-saving equipment is increasingly being used in buildings and factories to reduce reliance on traditional energy sources, lower operating costs, and promote environmental sustainability. Among these, systems that utilize natural light sources, such as light guide lighting systems consisting of a light collector, light pipe, and diffuser, are considered an innovative and efficient solution. This system captures sunlight through a light collector, directs it into a light pipe, and then distributes it evenly throughout the building through a diffuser, replacing or supplementing artificial lighting. However, while this technology performs well under ideal conditions, its reliance on sunlight presents significant limitations, particularly in unstable lighting conditions.

[0003] The intensity and stability of sunlight are affected by a variety of natural factors, including seasonal variations, geographic location, cloud cover, and weather conditions. For example, on cloudy or overcast days, sunlight is significantly scattered and absorbed, significantly reducing the amount of light captured by the concentrator. This, in turn, significantly reduces the brightness of the light entering the light pipe. In these circumstances, even the most advanced light-guided lighting systems will be unable to provide sufficient natural light, significantly compromising the lighting effect inside the building. Additional artificial lighting may be required, negating the originally intended energy savings.

[0004] The ever-changing weather conditions place higher demands on the performance of light-guided lighting systems. On clear days, the system can fully utilize the intense sunlight, providing ample natural light for the building. However, once clouds gather or the weather turns overcast, the light intensity rapidly decreases, and the light emitted by the diffuser becomes unstable. This intermittent lighting not only affects the comfort of the working environment but can also disrupt production processes. Especially in industrial operations with strict lighting requirements, unstable light can directly lead to reduced work efficiency and product quality.

[0005] Because light-guided lighting systems are highly dependent on natural light, they are almost ineffective at night or under persistent inclement weather conditions, which means they must rely on backup artificial lighting systems. This reliance not only increases the complexity and cost of the system, but also means that when natural light is unavailable, the energy consumption of the building factory will increase significantly, offsetting the energy saving advantages of light-guided lighting systems in sunny weather.

[0006] Therefore, how to provide an energy-saving device for building factories is a problem that those skilled in the art urgently need to solve. Utility Model Content

[0007] One purpose of the present utility model is to provide an energy-saving device for a building factory. The utility model is installed on the top or outer wall of a building through an energy-saving tube, facing the direction of the sun. The main concentrator collects the sun's rays, and the rays are reflected or refracted into the main light pipe, and then the main diffuser irradiates uniform and soft natural light, and the light is evenly distributed in the entire space; the brightness sensor senses that the brightness emitted by the main diffuser is insufficient, and the lamp group compensates for the insufficient brightness emitted by the main diffuser; the auxiliary energy concentrator and the auxiliary light pipe illuminate the light onto the photovoltaic panel, and the photovoltaic panel converts the light energy into electrical energy, and stores the electrical energy in the battery.

[0008] According to an embodiment of the present invention, an energy-saving device for a building factory includes an energy-saving tube, a main light collector, a main light pipe, a main diffuser, an auxiliary energy component and an auxiliary lighting component, wherein the main light collector is fixedly installed on the top of the energy-saving tube, the main light pipe is fixedly installed on the inner wall of the energy-saving tube, the main diffuser is fixedly installed on the bottom of the energy-saving tube, the auxiliary energy component is fixedly installed on the top of the energy-saving tube, and the auxiliary lighting component is fixedly installed on the bottom of the energy-saving tube.

[0009] Furthermore, the auxiliary energy component includes an auxiliary energy box, a first mounting hole and a second mounting hole, wherein the auxiliary energy box is arranged in a ring shape, the inner wall of the auxiliary energy box is fixedly sleeved on the top outer wall of the energy-saving cylinder, the first mounting hole is opened on the top of the auxiliary energy box, and the second mounting hole is opened on the bottom of the auxiliary energy box.

[0010] Furthermore, the auxiliary energy component also includes an auxiliary energy collector, a fixing tube and an auxiliary energy light guide tube, wherein the auxiliary energy collector is fixedly installed in the first mounting hole, the upper and lower ends of the fixing tube are fixedly installed on the inner wall of the auxiliary energy box, and the auxiliary energy light guide tube is fixedly installed on the inner wall of the fixing tube.

[0011] Furthermore, a plurality of auxiliary energy concentrators are provided, and the plurality of auxiliary energy concentrators are arranged at equal angles with the center of the energy-saving cylinder as the center.

[0012] Furthermore, the auxiliary energy component also includes a photovoltaic panel and a heat sink. The outer wall of the photovoltaic panel is fixedly mounted on the bottom inner wall of the fixed cylinder, the heat sink is fixedly mounted in the second mounting hole, and the non-heat sink end of the heat sink is fixedly mounted on the bottom of the photovoltaic panel.

[0013] Furthermore, the auxiliary light assembly includes an auxiliary light box and a third mounting hole. The auxiliary light box is arranged in a ring shape. The inner wall of the auxiliary light box is fixedly mounted on the bottom outer wall of the energy-saving tube. The third mounting hole is opened at the bottom of the auxiliary light box.

[0014] Furthermore, the auxiliary lighting assembly also includes a battery, a circuit board and a light group, wherein the battery is fixedly mounted on the inner top of the auxiliary lighting box, the circuit board is fixedly mounted on the inner bottom of the auxiliary lighting box, the light group is fixedly mounted in the third mounting hole, and the top of the light group is fixedly mounted on the bottom of the circuit board.

[0015] Furthermore, it also includes a brightness sensor, and four brightness sensors are provided. The four brightness sensors are evenly distributed on the bottom inner wall of the energy-saving tube.

[0016] The beneficial effects of the utility model are:

[0017] The utility model is installed on the top or outer wall of a building through an energy-saving tube, facing the direction of the sun. The main light collector collects the sun's rays, which are reflected or refracted into the main light pipe, and then irradiated by the main diffuser as uniform and soft natural light, and the light is evenly distributed in the entire space; the brightness sensor senses that the brightness emitted by the main diffuser is insufficient, and the lamp group compensates for the insufficient brightness of the main diffuser; the auxiliary light collector and the auxiliary light pipe illuminate the light onto the photovoltaic panel, which converts the light energy into electrical energy and stores the electrical energy in the battery. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] The accompanying drawings are used to provide a further understanding of the present invention and constitute a part of the specification. Together with the embodiments of the present invention, they are used to explain the present invention and do not constitute a limitation of the present invention. In the accompanying drawings:

[0019] Figure 1 This is a schematic diagram of the overall structure of an energy-saving device for a building factory proposed by the present invention;

[0020] Figure 2 This is a cross-sectional view of an energy-saving cylinder of an energy-saving device for a building factory proposed by the present invention;

[0021] Figure 3 This utility model proposes an energy-saving device for building factories Figure 2 A magnified view of point A;

[0022] Figure 4 This utility model proposes an energy-saving device for building factories Figure 2 Enlarged view of point B.

[0023] In the figure: 1. Energy-saving tube; 2. Main light collector; 3. Main light pipe; 4. Main diffuser; 5. Auxiliary energy component; 5.1. Auxiliary energy box; 5.2. First mounting hole; 5.3. Second mounting hole; 5.4. Auxiliary energy collector; 5.5. Fixing tube; 5.6. Auxiliary energy light pipe; 5.7. Photovoltaic panel; 5.8. Heat sink; 6. Auxiliary lighting component; 6.1. Auxiliary lighting box; 6.2. Third mounting hole; 6.3. Battery; 6.4. Circuit board; 6.5. Lamp group; 7. Brightness sensor. DETAILED DESCRIPTION

[0024] The present invention will now be described in further detail with reference to the accompanying drawings, which are simplified schematic diagrams that illustrate the basic structure of the present invention in a schematic manner.

[0025] Please refer to Figures 1 to 4 The utility model provides an energy-saving device for a building factory, comprising an energy-saving tube 1, a main concentrator 2, a main light pipe 3, a main diffuser 4, an auxiliary energy component 5 and an auxiliary lighting component 6, wherein the main concentrator 2 is fixedly mounted on the top of the energy-saving tube 1, the main concentrator 2 is often located on the top or outer wall of a building, facing the direction of the sun, the main concentrator 2 is composed of a reflector or a lens, and the sunlight is captured to the maximum extent, and the light is reflected or refracted, concentrated and directed into the main light pipe 3, the main concentrator 2 is used to collect, the main light pipe 3 is fixedly mounted on the inner wall of the energy-saving tube 1, and the reflector inside the main light pipe 3 The mechanism ensures that the light is reflected multiple times in the tube, minimizing the loss of light and maintaining the brightness and directionality of the light. The main diffuser 4 is fixedly installed at the bottom of the energy-saving tube 1. When the light reaches the main diffuser 4, it is emitted through the main diffuser 4 to provide uniform and soft natural light for the room. The light is evenly distributed in the entire space. The auxiliary energy component 5 is fixedly installed on the top of the energy-saving tube 1, and the auxiliary lighting component 6 is fixedly installed at the bottom of the energy-saving tube 1. It also includes a brightness sensor 7. Four brightness sensors 7 are provided, and the four brightness sensors 7 are evenly distributed on the bottom inner wall of the energy-saving tube 1.

[0026] Specifically, the auxiliary energy component 5 includes an auxiliary energy box 5.1, a first mounting hole 5.2 and a second mounting hole 5.3, wherein the auxiliary energy box 5.1 is arranged in a ring shape, and the inner wall of the auxiliary energy box 5.1 is fixedly sleeved on the top outer wall of the energy-saving tube 1, the first mounting hole 5.2 is opened on the top of the auxiliary energy box 5.1, and the second mounting hole 5.3 is opened on the bottom of the auxiliary energy box 5.1. The auxiliary energy component 5 also includes an auxiliary energy concentrator 5.4, a fixed tube 5.5 and an auxiliary energy light guide tube 5.6, wherein the auxiliary energy concentrator 5.4 is fixedly installed in the first mounting hole 5.2, the upper and lower ends of the fixed tube 5.5 are fixedly installed on the inner wall of the auxiliary energy box 5.1, and the auxiliary energy light guide tube 5.6 is fixedly installed on the inner wall of the fixed tube 5.5.

[0027] There are multiple auxiliary energy concentrators 5.4, and the multiple auxiliary energy concentrators 5.4 are arranged at equal angles with the center of the energy-saving tube 1 as the center. The auxiliary energy component 5 also includes a photovoltaic panel 5.7 and a heat sink 5.8. The outer wall of the photovoltaic panel 5.7 is fixedly mounted on the bottom inner wall of the fixed tube 5.5. The photovoltaic panel 5.7 converts light energy into electrical energy. The heat sink 5.8 is fixedly mounted in the second mounting hole 5.3. The non-heat dissipation end of the heat sink 5.8 is fixedly mounted on the bottom of the photovoltaic panel 5.7. The heat sink 5.8 is used to dissipate heat generated by the photovoltaic panel 5.7.

[0028] More specifically, the auxiliary lighting assembly 6 includes an auxiliary lighting box 6.1 and a third mounting hole 6.2. The auxiliary lighting box 6.1 is arranged in a ring shape. The inner wall of the auxiliary lighting box 6.1 is fixedly mounted on the bottom outer wall of the energy-saving tube 1. The third mounting hole 6.2 is opened at the bottom of the auxiliary lighting box 6.1. The auxiliary lighting assembly 6 also includes a battery 6.3, a circuit board 6.4 and a lamp group 6.5. Among them, the battery 6.3 is fixedly mounted on the inner top of the auxiliary lighting box 6.1. The battery 6.3 stores the electrical energy of the photovoltaic panel 5.7. The circuit board 6.4 is fixedly mounted on the inner bottom of the auxiliary lighting box 6.1. The lamp group 6.5 is fixedly mounted in the third mounting hole 6.2. The top of the lamp group 6.5 is fixedly mounted on the bottom of the circuit board 6.4. The electrical energy is provided to the lamp group 6.5 to compensate for whether the main diffuser 4 is illuminated and the luminosity meets the standard.

[0029] Furthermore, the energy-saving device is fixedly installed on the top or outer wall of the building, facing the direction of the sun. The main concentrator 2 collects the sun's light, which is reflected or refracted into the main light pipe 3. The light then shines on the main diffuser 4, providing uniform and soft natural light for the room, and the light is evenly distributed throughout the space.

[0030] The brightness sensor 7 detects the brightness of the main diffuser 4. If the brightness is insufficient, the battery 6.3 provides power to the circuit board 6.4 and the lamp group 6.5, and the lamp group 6.5 compensates for the insufficient brightness of the main diffuser 4.

[0031] The sunlight collected by the auxiliary energy concentrator 5.4 is reflected or refracted into the auxiliary energy light pipe 5.6, and then shines on the photovoltaic panel 5.7, which converts the light energy into electricity and stores it in the battery 6.3, which can provide power for the lamp group 6.5.

[0032] The above is only a preferred specific implementation method of the present invention, but the protection scope of the present invention is not limited to this. Any technician familiar with the technical field within the technical scope disclosed by the present invention can make equivalent replacements or changes based on the technical solution and utility model concept of the present invention, which should be covered by the protection scope of the present invention.

Claims

1. An energy-saving device for a building factory, characterized in that: The invention comprises an energy-saving tube (1), a main light collector (2), a main light pipe (3), a main diffuser (4), an auxiliary energy component (5) and an auxiliary lighting component (6), wherein the main light collector (2) is fixedly mounted on the top of the energy-saving tube (1), the main light pipe (3) is fixedly mounted on the inner wall of the energy-saving tube (1), the main diffuser (4) is fixedly mounted on the bottom of the energy-saving tube (1), the auxiliary energy component (5) is fixedly mounted on the top of the energy-saving tube (1), and the auxiliary lighting component (6) is fixedly mounted on the bottom of the energy-saving tube (1).

2. The energy-saving device for a building factory according to claim 1, characterized in that: The auxiliary energy assembly (5) comprises an auxiliary energy box (5.1), a first mounting hole (5.2) and a second mounting hole (5.3), wherein the auxiliary energy box (5.1) is arranged in an annular shape, the inner wall of the auxiliary energy box (5.1) is fixedly sleeved on the top outer wall of the energy-saving cylinder (1), the first mounting hole (5.2) is opened on the top of the auxiliary energy box (5.1), and the second mounting hole (5.3) is opened on the bottom of the auxiliary energy box (5.1).

3. The energy-saving device for a building factory according to claim 2, characterized in that: The auxiliary energy assembly (5) further comprises an auxiliary energy light collector (5.4), a fixing tube (5.5) and an auxiliary energy light guide tube (5.6), wherein the auxiliary energy light collector (5.4) is fixedly mounted in the first mounting hole (5.2), the upper and lower ends of the fixing tube (5.5) are fixedly mounted on the inner wall of the auxiliary energy box (5.1), and the auxiliary energy light guide tube (5.6) is fixedly mounted on the inner wall of the fixing tube (5.5).

4. The energy-saving device for a building factory according to claim 3, characterized in that: A plurality of auxiliary energy concentrators (5.4) are provided, and the plurality of auxiliary energy concentrators (5.4) are arranged at equal angles with the center of the energy-saving cylinder (1) as the center.

5. The energy-saving device for a building factory according to claim 3, characterized in that: The auxiliary energy component (5) further comprises a photovoltaic panel (5.7) and a heat dissipation plate (5.8); the outer wall of the photovoltaic panel (5.7) is fixedly mounted on the inner wall of the bottom of the fixed cylinder (5.5); the heat dissipation plate (5.8) is fixedly mounted in the second mounting hole (5.3); and the non-heat dissipation end of the heat dissipation plate (5.8) is fixedly mounted on the bottom of the photovoltaic panel (5.7).

6. The energy-saving device for a building factory according to claim 1, characterized in that: The auxiliary light assembly (6) comprises an auxiliary light box (6.1) and a third mounting hole (6.2); the auxiliary light box (6.1) is arranged in a ring shape; the inner wall of the auxiliary light box (6.1) is fixedly mounted on the outer wall of the bottom of the energy-saving tube (1); and the third mounting hole (6.2) is provided at the bottom of the auxiliary light box (6.1).

7. The energy-saving device for a building factory according to claim 6, characterized in that: The auxiliary lighting assembly (6) further comprises a battery (6.3), a circuit board (6.4) and a light assembly (6.5), wherein the battery (6.3) is fixedly mounted on the inner top of the auxiliary lighting box (6.1), the circuit board (6.4) is fixedly mounted on the inner bottom of the auxiliary lighting box (6.1), the light assembly (6.5) is fixedly mounted in the third mounting hole (6.2), and the top of the light assembly (6.5) is fixedly mounted on the bottom of the circuit board (6.4).

8. The energy-saving device for a building factory according to claim 1, characterized in that: It also includes a brightness sensor (7), four of which are provided and are evenly distributed on the bottom inner wall of the energy-saving cylinder (1).