Distributed transmission mechanism of festive lantern

Through a distributed transmission mechanism, the combination of a motor-driven lead screw and pneumatic machinery is used to achieve multi-level lantern panel combinations, solving the problem of the monotonous form of traditional lanterns and enhancing their artistic expression and ornamental value.

CN224080122UActive Publication Date: 2026-04-03JIANGSU JEYING INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-25
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

The fixed shape and simple lighting effects of traditional lanterns cannot meet the needs of modern users for personalization, interactivity and visual impact.

Method used

A distributed transmission mechanism is adopted, which drives the lamp panel to rise and fall through the motor-driven lead screw. Combined with pneumatic and mechanical transmission, it realizes the combination and change of multi-level lamp panels, including the linkage control of the first lamp panel, the second lamp panel, the third lamp panel and the fourth lamp panel, to ensure the stability of power transmission and the smoothness of lamp panel movement.

Benefits of technology

It enables the lanterns to unfold from multiple angles and dynamically, enhancing their artistic expression and visual appeal. The shape of the lantern panels can be flexibly changed to adapt to different scenes, avoiding the problem of traditional mechanical jamming and providing a more layered and dynamic visual display.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a distributed transmission mechanism of a festive lantern, and relates to the technical field of festive lantern, the distributed transmission mechanism of the festive lantern provided by the embodiment of the utility model comprises a butt joint seat used for butt joint installation with a mains supply socket, and further comprises an installation seat fixedly installed on one side of the butt joint seat; the lamp panels are fixedly installed on the upper portion of the installation base, the lamp panels are arranged in a distorted mode, and the lamp panels comprise the first lamp panel, the second lamp panel, the third lamp panel and the fourth lamp panel. By means of the technical scheme, the motor drives the lead screw to rotate, lifting of the second lamp panel is achieved, and the piston disc in the sliding block is driven to compress air to move in a linkage mode; and in the rising process of the second lamp panel, the third lamp panel rotates out by means of gear meshing, the telescopic air rod is ejected out to link the fourth lamp panel to rotate, the lamp panel combination form change is completed, and distributed linkage display is achieved.
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Description

Technical Field

[0001] This utility model relates to the field of lantern technology, and in particular to a distributed transmission mechanism for lanterns. Background Technology

[0002] Lanterns, also known as decorative lanterns, are an important folk art form for traditional Chinese festivals, especially the Lantern Festival. Originating in the Han Dynasty and flourishing in the Tang and Song Dynasties, they integrate painting, paper-cutting, and weaving techniques, symbolizing reunion, good fortune, and happiness. Traditional lanterns are made of bamboo, wood, paper, and gauze, and come in various shapes, such as palace lanterns, dragon lanterns, and revolving lanterns. With the development of technology, LED lanterns have emerged. While retaining traditional shapes and cultural connotations, they incorporate modern optoelectronic technology, resulting in more vibrant colors, energy efficiency, environmental friendliness, and programmable control. This makes lantern art more visually impactful in the night and an important part of modern lantern festivals and urban landscape decoration.

[0003] Traditional lanterns often adopt fixed shapes, with monotonous lighting effects and a lack of dynamic variation, failing to meet modern users' demands for personalization, interactivity, and visual impact. Especially in festivals or public places, the fixed shapes and monotonous display modes of traditional lanterns often fail to deliver a refreshing visual experience, affecting their overall artistic expression and aesthetic appeal. Utility Model Content

[0004] The purpose of this invention is to address the shortcomings of existing technologies where traditional fixed-form lanterns cannot meet modern people's needs for personalization, interactivity, and visual impact.

[0005] To achieve the above objectives, the present invention adopts the following technical solution: a distributed transmission mechanism for a lantern, including a docking seat for connecting and installing with a mains socket, and further including: a mounting seat fixedly installed on one side of the docking seat; and a lamp plate fixedly installed on the upper part of the mounting seat, wherein the lamp plate is modified and can change shape to adapt to various working environments, and the lamp plate includes a first lamp plate, a second lamp plate, a third lamp plate, and a fourth lamp plate, wherein the first lamp plate, the second lamp plate, the third lamp plate, and the fourth lamp plate can combine and change shape.

[0006] In at least some embodiments, the first lamp plate is fixed to the upper part of the mounting base, the second lamp plate is slidably mounted on the upper part of the first lamp plate, and the second lamp plate is screwed to the upper part of the lead screw rotatably mounted on the upper part of the mounting base. The motor output end fixed inside the mounting base is fixedly connected to the lead screw. In use, the lead screw is driven to rotate, controlling the second lamp plate to rise based on the first lamp plate.

[0007] In at least some embodiments, multiple second lamp panels are provided, and the multiple second lamp panels are integrally formed with the slider. The slider, which is slidably disposed inside the first lamp panel, is hollow inside. The slider is slidably connected to the lead screw. A piston disk slidably installed inside the slider is screwed to the lead screw. When the lead screw rotates, it drives the piston disk to move upward and compresses the gas inside the slider, thereby driving the slider to move upward. The outer wall of the slider has a piston disk that communicates with the cavity where the piston disk is located. The slider and the transmission air passage through the piston disk communicate with the inner cavity of the second lamp panel.

[0008] In at least some embodiments, a first gear plate is fixedly connected to the lower part of a third lamp plate that is rotatably mounted inside the second lamp plate by a torsion spring. A mounting block is fixedly connected to the upper part of the first lamp plate, and a first toothed plate is fixedly connected inside the mounting block. When the second lamp plate rises and the first gear plate meshes with the first toothed plate through a transmission gear rotatably mounted inside the first lamp plate, the third lamp plate rotates out from inside the second lamp plate.

[0009] In at least some embodiments, when the third lamp plate is perpendicular to the second lamp plate, a docking air passage is opened in the first gear plate to connect the second lamp plate and the third lamp plate, and the telescopic air rod fixed inside the third lamp plate is pneumatically affected to perform an ejection action, and the second gear plate fixed at the output end of the telescopic air rod is moved by force through the linkage rod.

[0010] In at least some embodiments, when the second toothed plate moves, it meshes with a second gear plate fixed at one end of the fourth lamp plate, and is constrained by the second gear plate rotatably installed in the third lamp plate, driving the fourth lamp plate to rotate.

[0011] Compared with the prior art, the advantages and positive effects of this utility model are as follows:

[0012] In this invention, the linkage control between multiple light panels enables the lantern to have a three-dimensional form that unfolds dynamically from multiple angles. Through precise transmission control of the motor and lead screw, the second light panel can be raised and lowered smoothly, triggering subsequent gear linkage actions, effectively realizing the combination and change between different light panels. The structure incorporates a design that combines pneumatic system and mechanical mechanism, ensuring the stability of power transmission while improving the smoothness and precision of the light panel movement, avoiding the problem of jamming in traditional mechanical systems. The unfolding and rotation of the light panels are precisely controlled by gears, pneumatic rods, springs and other components inside the structure, making the lantern more layered and dynamic in visual display. The shape can be flexibly changed to adapt to different scenes, greatly enhancing artistic expression, ornamental value and practicality, and providing an innovative technical solution for modern lighting decoration equipment. Attached Figure Description

[0013] Figure 1 A three-dimensional schematic diagram of the overall structure of a distributed transmission mechanism for a lantern is provided for this utility model.

[0014] Figure 2 This utility model provides a three-dimensional structural diagram of the interior of the first lamp plate in a distributed transmission mechanism for a lantern.

[0015] Figure 3 This utility model provides a three-dimensional structural schematic diagram of the cross-section of the second lamp plate in a distributed transmission mechanism for a lantern.

[0016] Figure 4 This utility model provides a three-dimensional structural schematic diagram of the slider cross-section in a distributed transmission mechanism for a lantern;

[0017] Figure 5 This utility model provides a three-dimensional structural diagram of another overall form of the distributed transmission mechanism of a lantern.

[0018] Figure 6 This utility model presents a three-dimensional structural diagram of a distributed transmission mechanism for a lantern, showing an overall redesigned form.

[0019] Legend: 1. Docking seat; 2. Mounting seat; 3. First lamp plate; 4. Second lamp plate; 5. Mounting block; 6. First toothed plate; 7. Lead screw; 8. Slider; 9. Piston disc; 10. Transmission air passage;

[0020] 401. First gear plate; 402. Connecting air passage; 403. Telescopic air rod; 404. Linkage rod; 405. Second gear plate; 406. Third lamp plate; 407. Fourth lamp plate; 408. Second gear plate; 409. Transmission gear. Detailed Implementation

[0021] To better understand the above-mentioned objectives, features, and advantages of this utility model, the present utility model will be further described below with reference to the accompanying drawings and embodiments. It should be noted that, unless otherwise specified, the embodiments and features described in these embodiments can be combined with each other.

[0022] Many specific details are set forth in the following description in order to provide a full understanding of the present invention. However, the present invention may also be implemented in other ways different from those described herein. Therefore, the present invention is not limited to the specific embodiments disclosed in the following specification.

[0023] Example, according to Figures 1-6 ,like Figure 1 , Figure 3 , Figure 5 and Figure 6As shown in the figure, the distributed transmission mechanism of the present invention provides a lantern, including a docking seat 1 for connecting and installing with a mains socket to provide a stable power input for the lantern, and a mounting seat 2 fixedly installed on one side of the docking seat 1; and a lamp plate fixedly installed on the upper part of the mounting seat 2. The lamp plate is modified so that it can change shape when the mounting seat 2 is rotated. The lamp plate makes shape changes, allowing it to flexibly adjust its shape during rotation to adapt to various working environments. The lamp plate consists of four independent parts, including a first lamp plate 3, a second lamp plate 4, a third lamp plate 406, and a fourth lamp plate 407. The first lamp plate 3, the second lamp plate 4, the third lamp plate 406, and the fourth lamp plate 407 make combined shape changes. Through the coordinated work of the distributed transmission mechanism, combined shape changes are achieved. Each lamp plate can flexibly adjust its position and angle according to the movement of the rotating mounting seat 2 to form a variety of combined effects. This not only enhances the visual expressiveness of the lantern, but also allows it to flexibly change its shape according to actual needs, making it suitable for different scenes and environments, and improving the lantern's ornamental value and artistic appeal.

[0024] like Figure 1 and Figure 2 As shown, in this embodiment, the shape change and position adjustment of the lamp panel are realized by rotating the lead screw 7 driven by the motor;

[0025] The first lamp plate 3 is fixed on the upper part of the mounting base 2, providing stable support for the entire lamp plate. The second lamp plate 4 is slidably mounted on the upper part of the first lamp plate 3, and can move freely on the first lamp plate 3. The second lamp plate 4 is screwed onto the upper part of the screw rod 7, which is rotatably mounted on the upper part of the mounting base 2. The output end of the motor fixed inside the mounting base 2 is fixedly connected to the screw rod 7. In use, the screw rod 7 is driven to rotate, controlling the second lamp plate 4 to rise based on the first lamp plate 3. When the motor is powered on, the screw rod 7 is driven to rotate. The rotation of the screw rod 7 drives the second lamp plate 4 to move up and down along the first lamp plate 3, realizing the linkage and shape transformation between the lamp plates.

[0026] During this process, the rise or fall of the second lamp panel 4 is entirely controlled by the rotation of the lead screw 7, allowing it to adjust its position as needed, thereby changing the shape of the entire lantern. This design enables the lamp panel to change flexibly and adapt to different working environments, increasing the display effect and operability of the lantern, breaking the limitations of traditional fixed-shape lanterns, and enhancing its artistic expression and ornamental value.

[0027] like Figure 3 and Figure 4As shown, in this embodiment, there are multiple second light plates 4, which are integrally formed with the slider 8. First, there is more than one second light plate 4. These second light plates 4 are connected together by the integrally formed structure of the slider 8, and the slider 8 is set inside the first light plate 3. The lead screw 7 is driven to rotate by the motor, which in turn drives the slider 8 to slide along the first light plate 3. In this process, the linkage between the slider 8 and the lead screw 7 transmits the rotational power, allowing the second light plates 4 to slide freely on the first light plate 3. The slider 8, which is slidably disposed inside the first lamp plate 3, is hollow inside. The slider 8 is slidably connected to the lead screw 7. The piston disc 9, which is slidably installed inside the slider 8, is screwed to the lead screw 7. When the lead screw 7 rotates, it drives the piston disc 9 to move upward and compresses the gas inside the slider 8, thus driving the slider 8 to move upward. This movement not only compresses the gas inside the slider 8, but also drives the slider 8 itself to move upward, thereby pushing the second lamp plate 4 to rise. The outer wall of the slider 8 has a piston disc 9 that communicates with the cavity where the piston disc 9 is located, ensuring effective compression and transmission of the gas. The slider 8 and the transmission air passage 10 through the piston disc 9 communicate with the inner cavity of the second lamp plate 4. The third lamp plate 406, which is rotatably installed inside the second lamp plate 4 via a torsion spring, is fixedly connected to the lower part of a first gear plate 401. A mounting block 5 is fixedly connected to the upper part of the first lamp plate 3. The mounting block 5 is fixedly connected to a... When the first gear plate 6 and the second lamp plate 4 rise, and the first gear plate 401 meshes with the first gear plate 6 through the transmission gear 409 installed inside the first lamp plate 3, the third lamp plate 406 rotates out from inside the second lamp plate 4. When the second lamp plate 4 rises, the first gear plate 401 inside it meshes with the first gear plate 6 fixed on the first lamp plate 3. Through this meshing transmission mechanism, after the first gear plate 401 rotates, it drives the movement of the third lamp plate 406. The third lamp plate 406 is connected to the inside of the second lamp plate 4 through a torsion spring device and can freely extend through the rotation of this device. When the first gear plate 401 and the first gear plate 6 are fully meshed, the third lamp plate 406 begins to rotate out from inside the second lamp plate 4, completing a variable display form. This mechanism allows the form of the lantern to change flexibly according to needs and dynamically display more light and shadow effects.

[0028] This enables multi-level and multi-angle dynamic changes. The control of the motor and the rotation of the lead screw 7 not only drive the lamp panel to rise and move, but also complete complex shape changes through gas compression and spring mechanism, ultimately making the lantern present a three-dimensional and dynamic effect.

[0029] like Figure 3 and Figure 4As shown, in this embodiment, the interaction between the third lamp plate 406 and the second lamp plate 4 is achieved through a combination of pneumatic and mechanical transmission. When the third lamp plate 406 is perpendicular to the second lamp plate 4, the docking air passage 402 opened in the first gear plate 401 connects the second lamp plate 4 and the third lamp plate 406, forming a pneumatic transmission system. The telescopic air rod 403 fixed inside the third lamp plate 406 is pneumatically affected and performs an ejection action. The telescopic air rod 403 located inside the third lamp plate 406 performs an ejection action under the pneumatic action. In operation, the telescopic air spring 403 is connected to the second gear plate 405 via a linkage rod 404, transmitting the ejected power to the second gear plate 405. The second gear plate 405, fixed to the output end of the telescopic air spring 403 via the linkage rod 404, moves under force. Upon receiving force, the second gear plate 405 begins to move and meshes with the second gear plate 408 fixed to one end of the fourth lamp plate 407. When the second gear plate 408 rotates, its rotational installation within the third lamp plate 406 constrains and controls the rotation of the fourth lamp plate 407. When the second gear plate 405 moves, it meshes with the second gear plate 408 fixed to one end of the fourth lamp plate 407, and, constrained by the second gear plate 408 rotatably installed within the third lamp plate 406, drives the fourth lamp plate 407 to rotate.

[0030] In this process, the telescopic air rod 403 is pushed out by the pneumatic effect, which pushes the linkage rod 404 to drive the second toothed plate 405 to move. The movement of the second toothed plate 405 directly causes the rotation of the second gear plate 408. When the second gear plate 408 rotates, it drives the fourth lamp plate 407 to rotate as well, thereby realizing the dynamic change of the fourth lamp plate 407. This design controls the rotation of the fourth lamp plate 407 through pneumatic and mechanical linkage, making the shape and movement of the entire lamp plate system more precise and coordinated. At the same time, due to the use of the pneumatic mechanism, the movement of the lamp plate is more stable and smooth, avoiding the jamming or impact problems that may occur in traditional mechanical systems, and improving the operational stability and display effect of the entire lantern device.

[0031] The working principle of this utility model is as follows: The overall structure is supported by the mounting base 2 fixedly installed on one side of the docking seat 1, and the movement of the lamp plate is controlled by the rotation of the lead screw 7 driven by the motor; the first lamp plate 3 is fixed on the mounting base 2 as a supporting base, and multiple second lamp plates 4 are slidably installed on it through an integrally formed slider 8, and can be raised and lowered by the lead screw 7. The slider 8 is provided with a piston disc 9 screwed to the lead screw 7. The rotation of the lead screw 7 drives the piston disc 9 to move upward to compress gas, and then drives the slider 8 to rise, so that the second lamp plates 4 rise synchronously. During the rising process, the first gear plate 401 inside the second lamp plate 4 meshes with the first tooth plate 6, which drives the third lamp plate 406 connected by the torsion spring to rotate out. The third lamp plate 406 is provided with a telescopic air rod 403, which extends through the air passage and moves the second tooth plate 405 in conjunction with it, and then meshes with the second gear plate 408 installed at one end of the fourth lamp plate 407, so that the fourth lamp plate 407 completes the rotation action. The whole realizes the multi-level linkage and three-dimensional unfolding of the lamp plates.

[0032] The above are merely preferred embodiments of this utility model and are not intended to limit the utility model in any other way. Any person skilled in the art may make changes or modifications to the above-disclosed technical content to create equivalent embodiments for application in other fields. However, any simple modifications, equivalent changes, and modifications made to the above embodiments based on the technical essence of this utility model without departing from the technical solution of this utility model shall still fall within the protection scope of this utility model.

Claims

1. A distributed transmission mechanism for a lantern, comprising a docking seat (1) for installation in conjunction with a mains power socket, characterized in that, Also includes: A mounting base (2) is fixedly installed on one side of the docking seat (1); The lamp plate is fixedly installed on the upper part of the mounting base (2). The lamp panel is specially designed to adapt to various working environments by changing its shape. The light panel includes a first light panel (3), a second light panel (4), a third light panel (406), and a fourth light panel (407), which can perform combined shape changes.

2. The distributed transmission mechanism for a lantern as described in claim 1, characterized in that: The first lamp plate (3) is fixed on the upper part of the mounting base (2), the second lamp plate (4) is slidably mounted on the upper part of the first lamp plate (3), and the second lamp plate (4) is screwed onto the upper part of the screw rod (7) rotatably mounted on the upper part of the mounting base (2). The motor output end fixed inside the mounting base (2) is fixedly connected to the screw rod (7). In use, the lead screw (7) is driven to rotate, controlling the second lamp plate (4) to rise based on the first lamp plate (3).

3. The distributed transmission mechanism for a lantern as described in claim 2, characterized in that: The second light plate (4) is provided in multiple forms, and the multiple second light plates (4) are integrally formed with the slider (8). The slider (8) slidably disposed inside the first lamp plate (3) is hollow inside, and the slider (8) is slidably connected to the lead screw (7). The piston disc (9) slidably disposed inside the slider (8) is screwed to the lead screw (7). When the lead screw (7) rotates, it drives the piston disc (9) to move upward and compresses the gas in the slider (8), and then drives the slider (8) to move upward. The inner wall of the slider (8) is provided with a piston disc (9) that communicates with the cavity where the piston disc (9) is located. The slider (8) and the transmission air passage (10) through the piston disc (9) communicate with the inner cavity of the second lamp plate (4).

4. The distributed transmission mechanism for a lantern as described in claim 2, characterized in that: The first gear plate (401) is fixedly connected to the lower part of the third lamp plate (406) which is installed inside the second lamp plate (4) by a torsion spring. A mounting block (5) is fixedly connected to the upper part of the first lamp plate (3), and a first toothed plate (6) is fixedly connected inside the mounting block (5). When the second lamp plate (4) rises and the first gear plate (401) meshes with the first gear plate (6) by rotating the transmission gear (309) installed inside the first lamp plate (3), the third lamp plate (406) rotates out from inside the second lamp plate (4).

5. The distributed transmission mechanism for a lantern as described in claim 4, characterized in that: When the third lamp plate (406) is perpendicular to the second lamp plate (4), the docking air passage (402) opened in the first gear plate (401) connects the second lamp plate (4) and the third lamp plate (406). Furthermore, the telescopic air rod (403) fixed inside the third lamp plate (406) is pneumatically affected and pushes out, and moves under force through the linkage rod (404) fixed to the second toothed plate (405) at the output end of the telescopic air rod (403).

6. The distributed transmission mechanism for a lantern as described in claim 5, characterized in that: When the second toothed plate (405) moves, it meshes with the second gear plate (408) fixed at one end of the fourth lamp plate (407). It is constrained by the second gear plate (408) rotatably installed in the third lamp plate (406) and drives the fourth lamp plate (407) to rotate.