Toy splicing ornament

By employing a perforated structure and light diffuser design in the toy assembly parts, the problem of light interference from LED beads was solved, enabling the projection of independent light spots and realistic starlight simulation, thus enhancing the user experience.

CN224194101UActive Publication Date: 2026-05-05DOLPHIN ISLAND HOT AIR BALLOON (SHANTOU) E-COMMERCE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DOLPHIN ISLAND HOT AIR BALLOON (SHANTOU) E-COMMERCE CO LTD
Filing Date
2026-04-01
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

The light from the LED beads in existing toy assembly parts tends to interfere with and overlap each other when they emit light, resulting in blurred light spots and messy light emission, making it impossible to achieve an independent flashing effect and resulting in low simulation.

Method used

The design employs a perforated structure with a first plate and a second plate. The first perforation accommodates the LED beads, while the second perforation guides and limits the light. Combined with a light diffuser and a light and shadow structure, the separation and softening of the light are controlled to achieve the projection of independent light spots.

Benefits of technology

It effectively avoids light overlap, improves the realism of starlight simulation and user viewing experience, and enhances the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a toy splicing ornament which comprises a splicing main body, a lamp assembly and a first plate body, the splicing main body is provided with a scene arrangement cavity and a display opening communicated with the scene arrangement cavity, the lamp assembly is arranged in the scene arrangement cavity and provided with lamp beads, and the first plate body is arranged in the scene arrangement cavity and located between the display opening and the lamp assembly. First through holes are formed in the first plate body, at least part of the lamp beads are contained in the corresponding first through holes, and light emitted by the lamp beads can be projected to the display opening. According to the toy splicing ornament, the light and shade changes of the lamp beads are controlled, the starlight flickering effect can be simulated, the lamp beads are separated and contained through the first through holes in the first plate body, light rays emitted by the lamp beads do not interfere with one another and emit light independently, the problems of light spot blurring and disordered light emitting caused by light ray superposition are effectively avoided, and the toy splicing ornament is suitable for popularization and application. The fidelity of starlight simulation is further improved, the requirement of a user for landscape ornamental value is met, and the use experience of the user is remarkably improved.
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Description

Technical Field

[0001] This utility model relates to the field of assembly toy technology, specifically to an assembly toy ornament. Background Technology

[0002] Toy assembly sets, composed of multiple structural elements, combine supporting functions with decorative effects and have gained widespread attention in recent years. Toy assembly sets with luminous effects, in particular, are favored by consumers for creating a unique visual atmosphere. Currently, most toy assembly sets on the market simply install lighting components within the scene arrangement cavity of the main assembly. The LEDs in these components are either directly exposed or only light-emitting through simple shielding structures, without effectively separating or guiding the light emitted by the LEDs.

[0003] Specifically, in existing toy assembly parts, the lamp beads in the lamp components do not have a dedicated separating structure. When multiple lamp beads emit light, the light is prone to interference and superposition, resulting in blurred light spots and messy light emission. It is impossible to achieve the independent flashing or lighting effect of each lamp bead. If used to simulate scenes such as starlight, the realism is poor and the simulation degree is low.

[0004] In view of the above, this utility model is hereby proposed. Utility Model Content

[0005] To solve one of the above-mentioned technical problems, this utility model provides a toy assembly ornament.

[0006] This application provides the following technical solution:

[0007] A toy assembly ornament, comprising:

[0008] The main assembly includes multiple structural components, which are assembled to form a scene arrangement cavity and a display opening connected to the scene arrangement cavity;

[0009] A lamp assembly, wherein the lamp assembly is disposed in the scene arrangement cavity, and the lamp assembly has lamp beads;

[0010] A first plate is disposed within the scene arrangement cavity. The first plate is located between the display opening and the lamp assembly. A first through hole is provided on the first plate, and at least some of the lamp beads are accommodated in the corresponding first through hole.

[0011] The second plate is located inside the scene arrangement cavity and is located on the side of the first plate near the display opening. The second plate is provided with a plurality of second through holes, and at least some of the second through holes are respectively connected to at least one first through hole. The light emitted by the lamp can pass through the second through holes and be projected onto the display opening.

[0012] Optionally, the second plate and the first plate are attached to each other.

[0013] Optionally, the second plate can be configured in any of the following ways:

[0014] At least a portion of the second through holes on the second plate have a smaller diameter than the first through hole;

[0015] The diameter of at least a portion of the second through holes on the second plate is greater than or equal to that of the first through hole;

[0016] Each of the second through holes on the second plate is connected to a first through hole;

[0017] At least a portion of the second through holes on the second plate are connected to at least two first through holes.

[0018] Optionally, the toy assembly includes light diffusers;

[0019] The light diffuser is disposed inside the scene arrangement cavity and is located on the side of the first plate near the display opening.

[0020] Optionally, the light diffuser is attached to the side of the second plate facing away from the first plate, and the light diffuser covers each of the second through holes.

[0021] Optionally, the surface of the light diffuser is provided with a light and shadow structure;

[0022] The light emitted by the LED beads is projected onto the display port through the light and shadow structure.

[0023] Optionally, the light and shadow structure includes a shape formed by protrusions and / or recesses on the surface of the light diffuser;

[0024] And / or, the light and shadow structure includes a coating disposed on one side surface of the light diffuser.

[0025] Optionally, the light diffuser is at least partially exposed in the display port.

[0026] Optionally, the lamp assembly includes a carrier, each of the lamp beads is disposed on a corresponding carrier, and each lamp bead protrudes from the surface of the carrier, and the first plate is attached to the surface of the carrier;

[0027] The carrier can be any one or more of the following: sheet, strip, and block.

[0028] By adopting the above technical solution, this application has the following beneficial effects:

[0029] The toy assembly ornament of this application can simulate the twinkling effect of starlight by controlling the brightness of the LED beads. The first through hole on the first plate separates and accommodates the LED beads, so that the light emitted by each LED bead does not interfere with each other and emits light independently. This effectively avoids the problems of blurred light spots and messy light emission caused by the superposition of light, further improving the realism of starlight simulation, meeting the user's needs for landscape viewing, and significantly improving the user experience. Attached Figure Description

[0030] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments and descriptions of the present invention are used to explain the present invention, but do not constitute an undue limitation of the present invention. Obviously, the drawings described below are merely some embodiments, and those skilled in the art can obtain other drawings based on these drawings without any creative effort.

[0031] Figure 1 This diagram illustrates the structure of the toy assembly ornament provided in the embodiments of this disclosure;

[0032] Figure 2 An exploded view of the toy assembly kit provided in the embodiments of this disclosure is shown;

[0033] Figure 3 This diagram illustrates the internal structure of a toy assembly ornament provided in an embodiment of the present disclosure.

[0034] In the diagram: 1. Main assembly; 11. Scene arrangement cavity; 12. Display opening; 2. Light assembly; 21. Carrier; 22. Lamp beads; 3. First panel; 31. First through hole; 4. Second panel; 41. Second through hole; 5. Light diffuser. Detailed Implementation

[0035] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.

[0036] In the description of this utility model, it should be noted that the terms "upper", "lower", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.

[0037] In the description of this utility model, it should be noted that, unless otherwise explicitly specified and limited, the terms "installation" and "connection" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium. Those skilled in the art can understand the specific meaning of the above terms in this utility model based on the specific circumstances.

[0038] See Figures 1 to 3 As shown in the figure, this application provides a toy assembly ornament, including: an assembly body 1, a lamp assembly 2, and a first plate 3. The assembly body 1 includes multiple structural bodies, which are assembled to form a scene arrangement cavity 11 and a display opening 12 communicating with the scene arrangement cavity 11. The structural bodies can be plates, blocks, membranes, irregularly shaped parts, etc. The lamp assembly 2 is disposed in the scene arrangement cavity 11, and the lamp assembly 2 has lamp beads 22. The first plate 3 is disposed in the scene arrangement cavity 11, and the first plate 3 is located between the display opening 12 and the lamp assembly 2. The first plate 3 is provided with a first through hole 31, and at least some of the lamp beads 22 are accommodated in the corresponding first through hole 31. The light emitted by the lamp beads 22 can be projected onto the display opening 12.

[0039] The toy assembly ornament of this application can simulate the twinkling effect of starlight by controlling the brightness changes of the LED beads 22. The first through hole 31 on the first plate 3 separates and accommodates the LED beads 22, so that the light emitted by each LED bead 22 does not interfere with each other and emits light independently. This effectively avoids the problems of blurred light spots and messy light emission caused by light superposition, further improves the realism of starlight simulation, meets the user's needs for landscape viewing, and significantly improves the user experience.

[0040] In this application, the lamp assembly 2 can be an LED lamp assembly 2, which may include a circuit board, with the LED beads 22 disposed on the circuit board. Alternatively, the lamp assembly 2 may not use a circuit board, but rather various forms such as LED strings to adapt to different scene layout requirements. The size and shape of the through-holes in the first plate 3 are not limited; a single through-hole can hold one or more LED beads 22.

[0041] In this application, the main assembly 1 has a scene arrangement cavity 11 and a display port 12. The light assembly 2, the first plate 3 and other structures are all set in the scene arrangement cavity 11. Through the design of the starry sky luminous landscape, the assembly toy is given decorative properties and can be used as a desktop ornament to enhance the style of the space, realize "one thing for multiple uses" and enhance the market competitiveness of the product.

[0042] In some possible implementations, the toy assembly also includes a second plate 4 located inside the scene arrangement cavity 11. The second plate 4 is located on the side of the first plate 3 near the display opening 12. The second plate 4 is provided with a plurality of second through holes 41, and at least some of the second through holes 41 are respectively connected to at least one first through hole 31. The light emitted by the LED bead 22 can pass through the second through holes 41 and be projected onto the display opening 12.

[0043] This application adds a second plate 4 located on the side of the first plate 3 near the display opening 12. Its second through-hole 41 is connected to the first through-hole 31. Light passes through the first through-hole 31 and then is projected onto the display opening 12 through the second through-hole 41, achieving secondary guidance and limitation of the light. Furthermore, the size of the second through-hole 41 is flexibly adjustable, not limited by the size of the first through-hole 31, allowing precise control of the light spot size. This enables flexible simulation of different starry sky scenes such as stars, the moon, and shooting stars, further enhancing the realism of the starlight simulation, meeting users' needs for landscape viewing, and significantly improving the user experience.

[0044] The size and shape of the first through hole 31 of the first plate 3 are unlimited. One or more LED beads 22 can be placed in a single first through hole 31. Combined with the design of the second through hole 41 of the second plate 4, the size, number and shape of the second through hole 41 can be flexibly adjusted according to the needs of starlight simulation. Each second through hole 41 is connected to at least one first through hole 31, which can flexibly adjust the size and shape of the light spot, adapt to the arrangement of miniature landscapes of different styles, and has a wider range of applications. At the same time, it can meet the personalized viewing needs of different users.

[0045] For example, the shapes of the first through hole 31 and the second through hole 41 can be circular, strip-shaped, polygonal, star-shaped, or any irregular shape. Taking the second through hole 41 as a strip-shaped hole as an example, the first through hole on the first plate 3 corresponding to the second through hole can also be a strip-shaped hole, and its extension trajectory is consistent with the corresponding second through hole 41. Multiple LED beads can be accommodated in the same strip-shaped first through hole 31 at the same time, and each LED bead is arranged sequentially along the extension direction of the first through hole 31, with adjacent LED beads not separated separately. The strip-shaped first through hole 31 and the second through hole 41 can extend along a straight line or a curve, and the two are connected. By controlling the lighting of each LED bead 22 in the strip-shaped first through hole 31, a scene of a shooting star streaking across the night sky can be simulated.

[0046] In some possible implementations, the second plate 4 and the first plate 3 are attached to each other, so that the second through hole 41 and the first through hole 31 are directly connected, thus avoiding light loss.

[0047] This application utilizes a structure where two plates are bonded together, allowing the light emitted by the LED bead 22 to pass directly and unobstructedly into the corresponding second through-hole 41 after passing through the first through-hole 31. This reduces light scattering, diffusion, and escape between the two plates, effectively preventing light loss and improving light utilization. Simultaneously, the bonding arrangement ensures a stable relative position between the second through-hole 41 and the first through-hole 31, preventing light spot shifting, ghosting, or blurring due to gaps or misalignment between the plates. This results in a clearer and more regular starlight spot projected from the display port 12, further enhancing the realism and stability of the starlight simulation effect.

[0048] In some possible implementations, at least part of the diameter of the second through hole 41 on the second plate 4 is smaller than that of the first through hole 31, that is, the diameter of the second through hole 41 can be smaller than that of the lamp bead 22. Since the first through hole 31 needs to accommodate the lamp bead 22, its diameter is usually limited by the external size of the lamp bead 22 and cannot be reduced arbitrarily. However, the second through hole 41 does not need to accommodate the lamp bead 22 and only serves as a channel for light to pass through. Therefore, the diameter of the second through hole 41 can be smaller than the size of the lamp bead 22 itself.

[0049] By setting the diameter of the second through-hole 41 to be smaller than that of the first through-hole 31, and even smaller than that of the LED bead 22, the size of the light spot can be further focused and defined, achieving a finer and more delicate starlight effect. This solves the technical problem that the LED bead 22 is too large to form tiny starlight. At the same time, the second through-hole 41 is directly connected to the first through-hole 31, and the second plate 4 is attached to the first plate 3. While reducing the diameter of the second through-hole 41, light can still pass through directly, avoiding additional light loss due to the reduced aperture. This results in a more delicate starlight spot that is closer to the visual effect of the real starry sky.

[0050] In some possible implementations, the diameter of at least some of the second through holes 41 on the second plate 4 is greater than or equal to that of the first through hole 31. Each of the second through holes 41 on the second plate 4 is connected to one of the first through holes 31. At least some of the individual second through holes 41 on the second plate 4 are connected to at least two of the first through holes 31. Alternatively, at least some of the individual second through holes 41 on the second plate 4 can be connected to at least two of the first through holes 31, so that the light emitted by multiple LED beads 22 is concentrated in the same second through hole 41 and emitted, forming a brighter and larger light-emitting area. The shapes of the first through holes 31 and the second through holes 41 are not limited and can be flexibly set according to the requirements of starlight simulation effect, including but not limited to circles, stripes, polygons, stars, or other irregular shapes, to simulate different starry sky landscape effects such as stars, moons, shooting stars, and constellations, greatly enriching the display forms and visual effects of toy assembly ornaments. Of course, each of the second through holes 41 on the second plate 4 can be connected to one of the first through holes 31 to form an independent and single starlight spot.

[0051] In some possible implementations, the toy assembly includes five light diffusers, which are disposed within the scene arrangement cavity 11 and located on the side of the first plate 3 near the display opening 12.

[0052] The toy assembly also includes five light diffusers, which are disposed within the scene arrangement cavity 11 of the main assembly 1 and located on the side of the first panel 3 closest to the display opening 12. The five light diffusers can be positioned close to the side of the second panel 4 away from the first panel 3, forming a relatively close fit with the second panel 4, ensuring that all light transmitted through the second panel 4 can reach the light diffusers and maximize their effect.

[0053] The specific form of the light diffuser 5 components is not limited; it can be a diffuser plate or a combination of a diffuser film and a transparent plate. Both forms can achieve the core effect of light softening and are suitable for different production processes and cost requirements. Specifically, the side of the light diffuser 5 components closest to the second plate 4 can be set as a frosted surface. If a combination of a diffuser film and a transparent plate is used, the diffuser film can be attached to the side of the transparent plate closest to the second plate 4, replacing the frosted surface to achieve the light scattering function.

[0054] The core function of the light diffuser is to soften and feather the edges of the transmitted light spots, thereby significantly enhancing the realism of the starlight effect. Its working principle is as follows: when light passes through the second aperture 41 of the second plate 4 and is projected onto the frosted surface (or diffusion film) of the light diffuser close to the second plate 4, the light undergoes uniform scattering, breaking down the original sharp light boundaries and softening the edges of the light spots, avoiding harsh outlines and more closely resembling the soft texture of starlight in the natural night sky. Without this light diffuser, the light would directly exit from the second aperture 41, resulting in very sharp edges and a harsh visual effect, making it impossible to achieve a realistic starlight simulation.

[0055] In some possible implementations, the surface of the light diffuser 5 is provided with a light and shadow structure, through which the light emitted by the LED 22 is projected onto the display opening 12. The light diffuser 5 is attached to the side of the second plate 4 facing away from the first plate 3, and the light diffuser 5 covers each of the second through holes 41. The light and shadow structure includes a shape formed by protrusions and / or recesses on the surface of the light diffuser 5, and / or, the light and shadow structure includes a coating disposed on one side surface of the light diffuser 5.

[0056] The surface of the light diffuser 5 is also equipped with a light and shadow structure. The light emitted by the LED beads 22 passes through the second aperture 41, is softened by the light diffuser 5, and is projected onto the display opening 12 through the light and shadow structure, further enriching the visual effect of the starlight landscape. The light diffuser 5 can be attached to the side of the second plate 4 facing away from the first plate 3, and the light diffuser 5 completely covers each of the second apertures 41, ensuring that all light passing through the second apertures 41 can act on the light diffuser 5 and the light and shadow structure, avoiding landscape clutter caused by light leakage.

[0057] The specific form of the light and shadow structure is not limited and can be set in various ways: First, the light and shadow structure includes a shape formed by protrusions and / or depressions on the surface of the five light diffusers. Through the refraction and reflection of light by the shape, the projected light spots form corresponding shape outlines, which can simulate complex starry sky landscapes such as constellations and nebulae; Second, the light and shadow structure includes a coating on one side of the surface of the five light diffusers. The coating can be made of materials with different light transmittance and colors. Through the combination of the coating's blocking and light transmission, light can be projected into light spots of different brightness and color, enhancing the diversity of the starry sky landscape; Third, protruding / depressed shape and coating can also be set at the same time to achieve a richer light and shadow superposition effect, further enhancing the ornamental value and uniqueness of the toy assembly ornament.

[0058] In addition, the five light diffusers help avoid the problem of direct, glaring light. The softened light is more gentle and comfortable, and will not cause visual fatigue even after long-term viewing. Together with the first plate 3 and the second plate 4, they form a complete "light separation-light spot limitation-light softening" structural system, further enhancing the integrity and anti-avoidance of the patent structure.

[0059] Furthermore, the light and shadow structure can also include a pattern printed on the side of the light diffuser 5 that faces away from the second plate 4 (i.e., away from the first plate 3 and close to the display opening 12). The pattern type can be flexibly selected according to the landscape simulation requirements, preferably a starry sky background pattern. By printing a starry sky background on the outside of the light diffuser 5, and combining it with LED lights that shine through the second aperture 41 and are softened by the light diffuser 5, the lights and the starry sky background pattern overlap and echo each other, forming a three-dimensional visual effect of "background starry sky and luminous starlight". This makes the overall landscape look like starlight twinkling in a real starry sky, greatly enriching the visual layering and ornamental value of the toy assembly, and further enhancing the user experience.

[0060] In addition, the five light diffusers help avoid the problem of direct, glaring light. The softened light is more gentle and comfortable, and will not cause visual fatigue even after long-term viewing. Together with the first plate 3 and the second plate 4, they form a complete "light separation-light spot limitation-light softening" structural system, further enhancing the integrity and anti-avoidance of the patent structure.

[0061] In some possible implementations, the light diffuser 5 is at least partially exposed to the display port 12, and light passing through the light diffuser 5 can directly hit the display port 12.

[0062] Optionally, the lamp assembly 2 includes a carrier 21, with each lamp bead 22 respectively disposed on the corresponding carrier 21, and each lamp bead 22 protruding from the surface of the carrier 21. The first plate 3 is attached to the surface of the carrier 21, facilitating the smooth insertion of the lamp bead 22 into the first through hole 31 of the first plate 3, achieving a precise fit between the lamp bead 22 and the first through hole 31. The first plate 3's attachment to the surface of the carrier 21 further fixes the position of the lamp bead 22, preventing the lamp bead 22 from shifting and causing misalignment of light projection. Simultaneously, it reduces the gap between the lamp bead 22 and the first through hole 31, reducing light dispersion and improving light utilization.

[0063] The form of the carrier 21 is unrestricted and can be any one or more of sheet, strip, and block shapes. It can be flexibly selected according to the space size of the scene arrangement cavity 11 and the distribution requirements of the LED beads 22, adapting to the design of toy assembly ornaments with different structures. Specifically, the carrier 21 can be a circuit board, including rigid circuit boards or flexible circuit boards. Rigid circuit boards are suitable for assembly structure designs with fixed structures, while flexible circuit boards can be bent and deformed to adapt to irregular scene arrangement cavities 11 or complex LED bead 22 distribution requirements. In addition, the carrier 21 can also be a cable, with LED beads 22 spaced apart on the cable to form a light string, which can be flexibly arranged in the scene arrangement cavity 11, further improving the arrangement flexibility of the light assembly 2 and adapting to various miniature landscape design requirements.

[0064] When the carrier 21 is a circuit board (rigid circuit board or flexible circuit board), the lamp assembly 2 also includes a control module. The control module is integrated on the circuit board and electrically connected to each lamp bead 22. The control module has a pre-stored programming program, which enables independent control of each lamp bead 22 through program instructions. Specifically, the control module can adjust the current of the lamp bead 22 through pulse width modulation (PWM) technology, thereby controlling the brightness of the lamp bead 22 to achieve a gradual change effect from dark to bright and from bright to dark. By pre-setting a random timing program, the control module controls the lighting and extinguishing timing and flashing frequency of each lamp bead 22, so that different lamp beads 22 present a random flashing state, simulating the effect of starlight twinkling in the natural starry sky. At the same time, a fixed flashing mode (such as synchronous flashing or group flashing) can be set according to needs to enrich the form of starlight simulation.

[0065] When the carrier 21 is a cable (i.e., a string of lights), the light assembly 2 can be equipped with an independent control box (the control module is integrated into the control box). The control box is electrically connected to each light bead 22 via a cable, enabling centralized control of the light beads 22. The control box also has a pre-stored programming program, which can realize independent lighting and extinguishing control of a single light bead 22 or multiple light beads 22, achieve brightness changes by adjusting the output current, and achieve a flashing effect by random timing control. In addition, the control box can also reserve a manual adjustment interface or a wireless control interface, which allows users to manually switch flashing modes and adjust brightness according to their own needs, improving the flexibility of use.

[0066] Furthermore, the control module can utilize common control chips such as microcontrollers and single-chip microcomputers, which are simple in structure, low in cost, and flexible in programming. The control program can be flexibly adjusted according to the starlight simulation requirements, adapting to different numbers, distribution patterns, and flashing effect needs of the LED beads 22. Through the above control methods, the lamp assembly 2 can precisely control the working state of each LED bead 22, ensuring a realistic and natural starlight flashing effect, while also achieving diversified control methods to adapt to different carrier types 21 and user needs.

[0067] The preferred embodiments disclosed above are merely illustrative of this application. These preferred embodiments do not exhaustively describe all details, nor do they limit the application to the specific implementations described. Clearly, many modifications and variations can be made based on the content of this specification. This specification selects and specifically describes these embodiments to better explain the principles and practical applications of this application, thereby enabling those skilled in the art to better understand and utilize this application. This application is limited only by the claims and their full scope and equivalents.

Claims

1. A toy assembly ornament, characterized in that, include: The main assembly includes multiple structural components, which are assembled to form a scene arrangement cavity and a display opening connected to the scene arrangement cavity; A lamp assembly, wherein the lamp assembly is disposed in the scene arrangement cavity, and the lamp assembly has lamp beads; A first plate is disposed within the scene arrangement cavity. The first plate is located between the display opening and the lamp assembly. A first through hole is provided on the first plate, and at least some of the lamp beads are accommodated in the corresponding first through hole. The second plate is located inside the scene arrangement cavity and is located on the side of the first plate near the display opening. The second plate is provided with a plurality of second through holes, and at least some of the second through holes are respectively connected to at least one first through hole. The light emitted by the lamp can pass through the second through holes and be projected onto the display opening.

2. The toy assembly ornament according to claim 1, characterized in that, The second plate is attached to the first plate.

3. The toy assembly ornament according to claim 2, characterized in that, The second plate can be configured in any of the following ways: At least a portion of the second through holes on the second plate have a smaller diameter than the first through hole; The diameter of at least a portion of the second through holes on the second plate is greater than or equal to that of the first through hole; Each of the second through holes on the second plate is connected to a first through hole; At least a portion of the second through holes on the second plate are connected to at least two first through holes.

4. The toy assembly ornament according to claim 1, characterized in that, Including light diffusers; The light diffuser is disposed inside the scene arrangement cavity and is located on the side of the first plate near the display opening.

5. The toy assembly ornament according to claim 4, characterized in that, The light diffuser is attached to the side of the second plate that is away from the first plate, and the light diffuser covers each of the second through holes.

6. The toy assembly ornament according to claim 4, characterized in that, The surface of the light diffuser is provided with a light and shadow structure; The light emitted by the LED beads is projected onto the display port through the light and shadow structure.

7. The toy assembly ornament according to claim 6, characterized in that, The light and shadow structure includes a shape formed by protrusions and / or depressions on the surface of a light diffuser; And / or, the light and shadow structure includes a coating disposed on one side surface of the light diffuser.

8. The toy assembly ornament according to claim 4, characterized in that, The light diffuser is at least partially exposed in the display port.

9. The toy assembly ornament according to any one of claims 1-8, characterized in that, The lamp assembly includes a carrier, each of the lamp beads is disposed on a corresponding carrier, and each lamp bead protrudes from the surface of the carrier, and the first plate is attached to the surface of the carrier; The carrier can be any one or more of the following: sheet, strip, and block.