Ceiling lamp packaging assembly and product set

By using limit buffers and cushioning pads made of pearl cotton, the problems of damage and wear during the packaging of ceiling lights were solved, resulting in more stable storage and transportation and reduced transportation costs.

CN224076169UActive Publication Date: 2026-04-03HUIZHOU NVC OPTOELECTRONICS TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-27
Publication Date
2026-04-03

AI Technical Summary

Technical Problem

In existing ceiling light packaging methods, corrugated cardboard has poor cushioning performance, which makes the ceiling lights easy to be damaged and worn during storage and transportation, and also results in low material utilization.

Method used

The limiting buffer is made of pearl cotton and designed in a frame shape with an insertion position in the middle. The limiting buffer fits into the inner wall of the packaging box to provide elastic cushioning, avoid hard contact and friction, and reduce hard contact by setting notches and cushioning pads.

Benefits of technology

It effectively prevents ceiling lights from being damaged by pressure, reduces transportation costs, improves the space utilization of the packaging box, and ensures the stability and lighting effect of the ceiling lights.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides a ceiling lamp packaging assembly and a product suite, the ceiling lamp packaging assembly comprises a packaging box and a limiting buffer part, the limiting buffer part is in a frame shape, an inserting position is formed in the middle of the limiting buffer part, and the limiting buffer part is made of pearl wool; when the limiting buffer piece is arranged in the packaging box, at least part of the periphery of the limiting buffer piece is attached to the inner wall of the packaging box, a clamping position is formed between the packaging box and the limiting buffer piece, and the packaging box limits the limiting buffer piece to move in the packaging box. The ceiling lamp packaging assembly is arranged on a product in a sleeved mode, the ceiling lamp packaging assembly can better prevent the ceiling lamp from being damaged and the surface of the ceiling lamp from being damaged, and the size of a packaging box can be reduced.
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Description

Technical Field

[0001] This utility model relates to the field of lighting packaging technology, specifically, to the design of a ceiling light packaging component and a product kit equipped with the ceiling light packaging component. Background Technology

[0002] Ceiling lights are a common type of lighting fixture. To facilitate storage, transportation, and sales, ceiling lights are often packaged; for example... Figure 1 As shown, the existing packaging method for the ceiling light 93 is as follows: a corrugated cardboard card 92 is set inside the packaging box 91 as a limiting support bracket. The middle part of the corrugated cardboard card 92 is cut to form a slot 921 for locking and limiting the ceiling light 93. At the same time, the outer periphery of the corrugated cardboard card 92 is attached to the inner wall of the packaging box 91 to prevent the corrugated cardboard card 92 and the ceiling light 93 from moving in the plane direction where the corrugated cardboard card 92 is located. However, due to the poor cushioning performance of the corrugated cardboard 92, and the fact that the lampshade 931 and / or base 932 of the ceiling light 93 are usually in direct contact with the packaging box 91, if the packaging box 91 is slightly squeezed in the height direction of the ceiling light 93 during storage and transportation, the squeezed packaging box 91 and corrugated cardboard 92 cannot provide effective pressure cushioning for the ceiling light 93, making the lampshade 931 and / or base 932 of the ceiling light 93 easily damaged (such as dents, cracks, etc.). Furthermore, because the ceiling light 93 is in hard contact with the card slot 921, the ceiling light 93, which is vibrating during handling, will have hard friction with the corrugated cardboard 92, making the surface of the ceiling light 93 easily worn. Moreover, the area cut off in the middle of the corrugated cardboard 92 is large and difficult to reuse, resulting in low material utilization. Summary of the Invention

[0003] To address the aforementioned issues, the main objective of this invention is to provide a ceiling light packaging component that can better prevent damage and surface injury to the ceiling light and is conducive to reducing the size of the packaging box.

[0004] Another objective of this invention is to provide a product kit incorporating the aforementioned ceiling light packaging components.

[0005] To achieve the main objective of this utility model, this utility model provides a ceiling light packaging assembly, including a packaging box. The ceiling light packaging assembly further includes a limiting buffer member, which is frame-shaped and has an insertion position in the middle. The limiting buffer member is made of pearl cotton. When the limiting buffer member is placed inside the packaging box, at least a portion of the outer periphery of the limiting buffer member is in contact with the inner wall of the packaging box, and a locking position is formed between the packaging box and the limiting buffer member, thus restricting the limiting buffer member from moving within the packaging box.

[0006] As can be seen from the above, using pearl cotton to make the limiting buffer component gives it good elasticity, which can absorb pressure when the packaging box and / or ceiling light are squeezed, achieving a cushioning effect and preventing damage to the ceiling light. At the same time, due to the elasticity of the limiting buffer component, when the ceiling light is inserted into the insertion position and the combination of the ceiling light and the limiting buffer component is placed in the packaging box, the ceiling light can apply a squeezing force to the limiting buffer component in the vertical direction of the insertion position, forcing the limiting buffer component to move towards the inner wall of the packaging box, forcing the limiting buffer component to press against the inner wall of the packaging box, preventing the combination of the ceiling light and the limiting buffer component from moving around in the packaging box. Furthermore, unlike corrugated cardboard, the limiting buffer component will not scratch the surface of the ceiling light due to friction with it. In addition, the design of the ceiling light packaging component also helps to reduce the volume of the packaging box, thus making it easier to store and transport, and reducing transportation costs.

[0007] A further option is that the cross-section of the edge of the limiting buffer is circular or polygonal; the outline of the limiting buffer is circular or polygonal.

[0008] As can be seen from the above, this design allows the ceiling light to be inserted more stably into the insertion position and ensures the depth of insertion of the ceiling light into the insertion position, thus guaranteeing the limiting and supporting effect of the limiting buffer on the ceiling light. In addition, the outline shape of the limiting buffer can be bent and adjusted according to the shape of the ceiling light, so that the limiting buffer does not need to be made into a specific fixed shape, effectively improving the flexibility and practicality of the limiting buffer.

[0009] A further solution is that when the cross-section is polygonal, the cross-section is either a regular polygon or an irregular polygon; when the irregular polygon is an irregular pentagon, the irregular pentagon has a base, a first side, a second side, a top edge, and a supporting hypotenuse, the base is connected between the first end of the first side and the first end of the second side, the first side is located near the insertion position, the length of the first side is less than the length of the second side, the first end of the top edge is connected to the second end of the second side, the supporting hypotenuse is connected between the second end of the first side and the second end of the top edge, and the base and the second side are attached to the inner wall of the packaging box; when the irregular polygon is a right trapezoid, the right trapezoid has an upper base, a lower base, a right leg, and a hypotenuse, the upper base is located near the insertion position, and the right leg and the lower base are attached to the inner wall of the packaging box; when the irregular polygon is a right triangle, the right triangle has a first right leg, a second right leg, and a hypotenuse, the hypotenuse is located near the insertion position, and the first right leg and the second right leg are attached to the inner wall of the packaging box.

[0010] As can be seen from the above, this design allows at least one inclined surface on the cross-section to form a stable support for the ceiling light, ensuring the depth of the ceiling light insertion into the mounting position and guaranteeing the limiting buffer's limiting effect, supporting effect, and supporting stability for the ceiling light.

[0011] A further solution is to have multiple notches on the limiting buffer, which can be bent into a polygon by the notches, with the notches located on the side of the limiting buffer closest to the insertion position.

[0012] As can be seen from the above, the notch makes it easier to bend the limiting buffer into a shape that matches the ceiling light, reduces the force required to bend the limiting buffer, and better weakens the tendency of the limiting buffer to rebound under its own elasticity, thus ensuring the stability of the limiting buffer when bending.

[0013] A further proposed solution is that the notch is triangular in shape, with the base of the triangular shape close to the insertion position and the apex of the triangular shape facing the outer periphery of the limiting buffer; or the notch is trapezoidal in shape, with the lower base of the trapezoidal shape close to the insertion position and the upper base of the triangular shape close to the outer periphery of the limiting buffer; or the notch is rectangular in shape.

[0014] As can be seen from the above, by designing the shape of the notch, the force required to be applied when bending the limiting buffer can be further reduced, and the tendency of the limiting buffer to rebound under its own elasticity can be further weakened.

[0015] A further solution is that the ceiling light packaging assembly also includes a first cushioning pad, which is placed on top of the slot and adheres to the inner wall of the packaging box and between the ceiling light.

[0016] As can be seen from the above, adding a first buffer pad can prevent the lampshade of the ceiling light from directly contacting the inner wall of the packaging box, thereby avoiding hard friction between the lampshade and the inner wall of the packaging box, thus preventing the lampshade from being worn, ensuring the lighting effect of the ceiling light, and reducing transportation costs.

[0017] A further improvement is that the ceiling light packaging assembly also includes a second cushioning pad, which is placed at the bottom of the slot and fits between the limiting buffer and the inner wall of the packaging box.

[0018] As can be seen from the above, the addition of a second buffer pad prevents the base of the ceiling light from contacting the inner wall of the packaging box when the base of the ceiling light is flush with the bottom of the limiting buffer. This avoids hard friction between the base and the inner wall of the packaging box, thereby preventing damage to the base and reducing transportation costs.

[0019] To achieve another objective of this utility model, this utility model provides a product kit including a ceiling light, wherein the product kit further includes the aforementioned ceiling light packaging component, and the ceiling light is inserted into the insertion position and located in the slot.

[0020] As can be seen from the above, by using the aforementioned ceiling light packaging components to package the ceiling light, the product kit can better prevent damage to the ceiling light, and also helps to reduce the size of the packaging box, making storage and transportation more convenient and reducing transportation costs.

[0021] A further option is to have the bottom of the ceiling light flush with the bottom of the limiting buffer; or to have the bottom of the ceiling light located within the insertion position.

[0022] As can be seen from the above, this design can prevent the base of the ceiling light from protruding from the limiting buffer, thus weakening the protective effect of the limiting buffer on the base, and can better prevent the base from being deformed and damaged by external pressure.

[0023] A further solution is that, in the vertical direction of the insertion position, the outer periphery of the ceiling light is located between the outer periphery of the limiting buffer and the insertion position; and / or the ceiling light forces the limiting buffer to fit tightly against the inner wall of the packaging box.

[0024] As can be seen from the above, by designing the relative positions of the ceiling light and the limiting buffer, a buffer space is created between the outer periphery of the ceiling light and the inner wall of the packaging box, which better prevents the lampshade of the ceiling light from being deformed and damaged by external pressure; while the limiting buffer tightly fits the inner wall of the packaging box under the push of the ceiling light, which can better prevent the limiting buffer and the ceiling light on it from moving around inside the packaging box. Attached Figure Description

[0025] Figure 1 This is an exploded view of the existing ceiling light packaging components.

[0026] Figure 2 This is an exploded view of an embodiment of the product kit of this utility model.

[0027] Figure 3 This is a structural diagram of the limiting buffer component in an embodiment of the present utility model, where the cross-section of its side is circular.

[0028] Figure 4 This is a structural diagram of the limiting buffer component in an embodiment of the present utility model, where the cross-section of its side is an irregular pentagon.

[0029] Figure 5 This is a partial structural diagram of the limiting buffer component in an embodiment of the present utility model, where the cross-section of its side is a right-angled trapezoid.

[0030] Figure 6 This is a partial structural diagram of the limiting buffer component in an embodiment of the present utility model, where the cross-section of one side is a right-angled triangle.

[0031] Figure 7 This is a cross-sectional view of the ceiling light being inserted into the insertion position of the limiting buffer in an embodiment of the product kit of this utility model.

[0032] Figure 8 This is a schematic diagram of the limiting buffer component of this utility model product kit embodiment, which is bent into a triangle.

[0033] Figure 9 This is a schematic diagram of the limiting buffer component of this utility model product kit embodiment, which is bent into a square shape.

[0034] Figure 10 This is a schematic diagram of the structure of the limiting buffer component in an embodiment of the product kit of this utility model, which is bent into a rectangle.

[0035] Figure 11 This is a schematic diagram of the limiting buffer component of this utility model product kit embodiment, which is bent into a hexagonal shape.

[0036] The present invention will be further described below with reference to the accompanying drawings and embodiments. Detailed Implementation

[0037] Product Package Example

[0038] Reference Figure 2 and Figure 3 Product kit 100 includes a ceiling light packaging assembly and a ceiling light 3. The ceiling light packaging assembly includes a packaging box 1 and a limiting buffer 2.

[0039] The limiting buffer 2 is frame-shaped, and an insertion position 21 is formed in the middle of the limiting buffer 2. The insertion position 21 is used for inserting the ceiling light 3 into it, thereby supporting, limiting and buffering the ceiling light 3. When the ceiling light 3 is placed into the packaging box 1 along with the limiting buffer 2, at least a portion of the outer periphery of the limiting buffer 2 is in contact with the inner wall of the packaging box 1 to limit the vertical movement of the limiting buffer 2 and the ceiling light 3 relative to the packaging box 1 in the insertion direction of the insertion position 21. In addition, in the insertion direction of the insertion position 21, the bottom of the limiting buffer 2 (i.e., the side near the base 32 of the ceiling light 3) is in contact with the inner wall of the packaging box 1, while the top of the limiting buffer 2 (i.e., the side near the lampshade 31 of the ceiling light 3) forms a locking position with the inner wall of the packaging box 1. This locking position is used to limit the ceiling light 3 to prevent the ceiling light 3 and the limiting buffer 2 from moving in the insertion direction of the insertion position 21. The limiting buffer 2 can be in the form of a circular frame or a polygonal frame.

[0040] In some embodiments, the cross-section of the side of the (frame-shaped) limiting buffer 2 is circular (C). This design allows the side of the limiting buffer 2 to provide greater support to the ceiling light 3's lampshade 31 with a quasi-inclined surface, the base 32 with a quasi-inclined surface, or the junction of the lampshade 31 and the base 32 through its arc surface. This avoids the ceiling light 3 being pushed up due to the sharp corner structure of the side of the limiting buffer 2, preventing the ceiling light 3 from being stably inserted into the insertion position 21. It also improves the support and buffering effect of the limiting buffer 2 on the ceiling light 3.

[0041] In some embodiments, the cross-section of the side of the (frame-shaped) limiting buffer 2 is a regular polygon, such as a square, a regular pentagon, a regular hexagon, etc. Preferably, at least one side of the regular polygon is inclined (inclined to the height direction of the ceiling light 3), so that the surface where the inclined side is located forms a supporting slope, so as to provide a larger area of ​​support for the junction of the base 32 or the lampshade 31 and the base 32, and avoid the ceiling light 3 from being pushed up due to the sharp corner structure of the side of the limiting buffer 2, so that the ceiling light 3 cannot be smoothly inserted into the insertion position 21. At the same time, it also improves the support and buffering effect of the limiting buffer 2 on the ceiling light 3.

[0042] like Figure 4 As shown, in some embodiments, the cross-section of the (frame-shaped) limiting buffer 2 can also be configured as an irregular pentagon D. This irregular pentagon D has a bottom edge 231, a first side edge 232, a second side edge 233, a top edge 234, and a supporting inclined edge 235. The bottom edge 231 is preferably horizontal, allowing the bottom surface of the limiting buffer 2 where the bottom edge 231 is located to fit tightly against the inner wall of the packaging box 1. The first side edge 232 is located on the side of the limiting buffer 2 closest to the insertion position 21; that is, the first side edge 232 can be considered as the inner peripheral wall of the insertion position 21. The second side edge 233 is located on the side of the limiting buffer 2 away from the insertion position 21; that is, the second side edge 233 can be considered as the outer peripheral surface of the limiting buffer 2. This second side edge is used for... A small portion is used for the inner wall of the packaging box 1 to restrict the vertical movement of the limiting buffer 2 in the insertion direction of the insertion position 21. The bottom wall is connected between the first end of the first side 232 and the first end of the second side 233. Preferably, the first side 232 is parallel to the second side 233 and the second side 233 is perpendicular to the bottom edge 231. The first end of the top edge 234 is connected to the first end of the second side 233. The supporting inclined edge 235 is connected between the second end of the top edge 234 and the second end of the first side 232. The supporting inclined surface where the supporting inclined edge 235 is located is used to support the ceiling light 3 and restrict the ceiling light 3 from being excessively inserted into the insertion position 21. By designing the cross-section, the edge of the limiting buffer 2 can provide a larger area of ​​support to the ceiling light 3, such as the lampshade 31 with a quasi-inclined surface, the base 32 with a quasi-inclined surface, or the junction of the lampshade 31 and the base 32, through its supporting slope. This avoids the ceiling light 3 being pushed up due to the sharp corner structure of the edge of the limiting buffer 2, preventing the ceiling light 3 from being stably inserted into the insertion position 21. At the same time, it also improves the support and buffering effect of the limiting buffer 2 on the ceiling light 3.

[0043] like Figure 5As shown, in some embodiments, the cross-section of the side of the (frame-shaped) limiting buffer 2 can also be set as a right-angled trapezoid E. The right-angled trapezoid E has an upper base 241, a lower base 242, a right-angled waist 243, and an inclined waist 244. The upper base 241 is located close to the insertion position 21, and the right-angled waist 243 and the lower base 242 are attached to the inner wall of the packaging box 1. This design allows the side of the limiting buffer 2 to provide a larger area of ​​support for the ceiling light 3's lampshade 31 with a quasi-inclined surface, the base 32 with a quasi-inclined surface, or the junction of the lampshade 31 and the base 32 through the inclined surface where the inclined waist 244 is located. This avoids the ceiling light 3 being pushed up due to the sharp corner structure of the side of the limiting buffer 2, preventing the ceiling light 3 from being unable to be smoothly inserted into the insertion position 21. It also improves the support and buffering effect of the limiting buffer 2 on the ceiling light 3.

[0044] like Figure 6 As shown, in some embodiments, the cross-section of the side of the (frame-shaped) limiting buffer 2 can also be set as a right-angled triangle F. The right-angled triangle F has a first right-angled side 251, a second right-angled side 252, and a hypotenuse 253. The hypotenuse 253 is located close to the insertion position 21, and the first right-angled side 251 and the second right-angled side 252 fit against the inner wall of the packaging box 1. This design allows the side of the limiting buffer 2 to provide a larger area of ​​support for the ceiling light 3's lampshade 31 with a quasi-inclined surface, the base 32 with a quasi-inclined surface, or the junction of the lampshade 31 and the base 32 through the inclined surface where the hypotenuse 253 is located. This avoids the ceiling light 3 being pushed up due to the sharp corner structure of the side of the limiting buffer 2, preventing the ceiling light 3 from being unable to be smoothly inserted into the insertion position 21. It also improves the support and buffering effect of the limiting buffer 2 on the ceiling light 3.

[0045] It should be noted that the above example of the cross-section of the side of the limiting buffer 2 does not limit the shape of the cross-section of the side of the limiting buffer 2. It can be understood that the cross-section of the side of the limiting buffer 2 can also be other shapes that can play the same function, so that the ceiling light 3 can be inserted more stably into the insertion position 21 and ensure the depth of the ceiling light 3 inserted into the insertion position 21, thus ensuring the limiting buffer 2's limiting and supporting effect on the ceiling light 3.

[0046] In some embodiments, such as Figure 7 As shown, the limiting buffer 2 can be designed such that when the ceiling light 3 is inserted into the insertion position 21, the bottom of the ceiling light 3 is flush with the bottom of the limiting buffer 2. In some embodiments, the limiting buffer 2 can also be designed such that when the ceiling light 3 is inserted into the insertion position 21, the bottom of the ceiling light 3 is located within the insertion position 21. Through the above design, the protective effect of the limiting buffer 2 on the base 32 of the ceiling light 3 can be prevented from being weakened due to the protrusion of the limiting buffer 2, and the base 32 can be better prevented from being deformed and damaged by external pressure.

[0047] In addition, refer to Figure 7 In the vertical direction of the insertion position 21, the outer periphery of the ceiling light 3 is located between the outer periphery of the limiting buffer 2 and the insertion position 21, so that there is a gap S between the outer periphery of the ceiling light 3 and the outer periphery of the limiting buffer 2. This gap S can prevent the outer periphery of the ceiling light 3 from adhering to the bottom wall of the packaging box 1, thereby creating a buffer space between the outer periphery of the ceiling light 3 and the inner wall of the packaging box 1. This prevents the packaging box 1 from being directly squeezed and deformed when it is squeezed in the vertical direction of the insertion position 21, thus better preventing the lampshade 31 of the ceiling light 3 from being deformed and damaged by external force.

[0048] The limiting buffer 2 is preferably made of pearl cotton to ensure that it has good elasticity, allowing it to absorb pressure when the packaging box 1 and / or the ceiling light 3 are squeezed, thus achieving a cushioning effect and preventing damage to the ceiling light 3. Furthermore, due to the elastic properties of the limiting buffer 2, when the ceiling light 3 is inserted into the insertion position 21 and the combination of the ceiling light 3 and the limiting buffer 2 is placed inside the packaging box 1, the ceiling light 3 can apply a pushing force F to the limiting buffer 2 in the vertical direction of the insertion direction of the insertion position 21. This forces the limiting buffer 2 to undergo a certain degree of elastic deformation and deform towards the inner wall of the packaging box 1, thereby forcing the limiting buffer 2 to press firmly against the inner wall of the packaging box 1, further preventing the limiting buffer 2 and the ceiling light 3 on it from moving within the packaging box 1. Of course, as another optional solution, the limiting buffer 2 can also be made of other materials with similar properties to pearl cotton.

[0049] Furthermore, unlike existing designs that use corrugated cardboard to limit and support the ceiling light 3, the limiting buffer 2 will not scratch the surface of the ceiling light 3 due to friction with it. Moreover, the design of the ceiling light packaging components also helps to reduce the size of the packaging box 1, as shown in the reference... Figure 1 and Figure 2 Compared to using corrugated cardboard to limit and support the ceiling light 3, the length L2 of the packaging box 1 of this ceiling light packaging component is 2 to 3 millimeters smaller than the length L1 of the existing packaging box 91. The width W2 of the packaging box 1 of this ceiling light packaging component is 2 to 3 millimeters smaller than the width W1 of the existing packaging box 91. The height H2 of the packaging box 1 of this ceiling light packaging component is 3 to 4 millimeters smaller than the height H1 of the existing packaging box 91. Therefore, the product set 100 using this ceiling light packaging component is more conducive to storage and transportation, and the transportation cost is lower.

[0050] In some embodiments, the outline of the limiting buffer 2 may be circular (e.g., Figures 2 to 4 , Figure 7 As shown); in some embodiments, the outline of the limiting buffer 2 may be polygonal (e.g. Figures 8 to 11 As shown in the figure, the outline of the limiting buffer 2 can be bent and adjusted according to the shape of the ceiling light 3. Since the limiting buffer 2 itself can be elastically deformed, the limiting buffer 2 does not need to be made into a specific fixed shape, which effectively improves the flexibility and practicality of the limiting buffer 2.

[0051] Furthermore, multiple notches 22 can be provided on the limiting buffer 2 according to the shape to be bent into, so that the limiting buffer 2 can be bent into different shapes (such as polygons) through the notches 22; wherein, the notches 22 are located on the side of the limiting buffer 2 closer to the insertion position 21. The setting of the notches 22 makes it easier to bend the limiting buffer 2 into a shape that matches the shape of the ceiling light 3, while reducing the force required to bend the limiting buffer 2, and better weakening the tendency of the limiting buffer 2 to rebound under its own elasticity, ensuring the bending stability of the limiting buffer 2.

[0052] In some embodiments, the notch 22 may be configured as a triangular shape; wherein the base of the triangular shape is located near the insertion position 21, and the apex of the triangular shape is located towards the outer periphery of the limiting buffer 2 (see [reference]). Figures 8 to 11 ).

[0053] In some embodiments, the notch 22 may be configured as a trapezoidal shape; wherein the lower base of the trapezoidal shape is located near the insertion position 21, and the upper base of the triangular shape is located near the outer periphery of the limiting buffer 2.

[0054] In some embodiments, the notch 22 can be configured as a near-rectangular shape. It is evident that by designing the shape of the notch 22, the force required to be applied when bending the limiting buffer 2 can be further reduced, and the tendency of the limiting buffer 2 to rebound under its own elasticity can be further weakened.

[0055] Preferably, in some embodiments, the ceiling light packaging assembly may further include a first cushioning pad, which may also be made of pearl cotton or other materials with similar properties (to pearl cotton). The first cushioning pad is positioned on top of the slot and adheres to the inner wall of the packaging box 1 and the ceiling light 3. Adding the first cushioning pad prevents the lampshade 31 of the ceiling light 3 from directly contacting the inner wall of the packaging box 1, thus avoiding hard friction between the lampshade 31 and the inner wall of the packaging box 1, preventing wear on the lampshade 31, ensuring the lighting effect of the ceiling light 3, and reducing transportation costs. For example, when the packaging box 1 is pressed in the insertion direction of the insertion position 21, although the limiting buffer 2 can absorb the extrusion force through elastic deformation to offset the possible deformation of the ceiling light 3 and protect the ceiling light 3, the lampshade 31 of the ceiling light 3 is still in direct contact with the inner wall of the packaging box 1. Therefore, the lampshade 31 of the ceiling light 3 is still at risk of being deformed, dented, or cracked due to pressure. By setting the first buffer pad, the first buffer pad can provide a certain degree of buffer protection for the area of ​​the lampshade 31 that the limiting buffer 2 cannot protect, thereby reducing the probability of the lampshade 31 being deformed, dented, or cracked due to pressure.

[0056] Furthermore, the ceiling light packaging assembly may also include a second cushioning pad, which is placed at the bottom of the locking position and adheres to the inner wall of the packaging box 1. The second cushioning pad can also be made of pearl cotton or other materials with similar properties. Adding the second cushioning pad prevents the base 32 of the ceiling light 3 from contacting the inner wall of the packaging box 1 when the bottom of the base 32 of the ceiling light 3 is flush with the bottom of the locking buffer 2, thus avoiding hard friction between the base 32 and the inner wall of the packaging box 1, preventing damage to the base 32, and reducing transportation costs. For example, when the side of the packaging box 1 closest to the bottom of the base 32 of the ceiling light 3 is compressed, the second cushioning pad can provide a certain degree of cushioning protection to the area of ​​the base 32 that the locking buffer 2 cannot protect, thereby reducing the probability of deformation, dents, cracks, or damage to the base 32 due to compression.

[0057] In summary, the design of the ceiling light packaging component of product set 100 enables the ceiling light 3 to be packaged using this packaging component, which can better prevent damage to the ceiling light 3, reduce the volume of the packaging box 1, make storage and transportation more convenient, and reduce transportation costs.

[0058] Finally, it should be emphasized that the above description is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. For those skilled in the art, the present utility model can have various changes and modifications. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.

Claims

1. A ceiling light packaging assembly, including a packaging box, characterized in that: The ceiling light packaging assembly also includes a limiting buffer, which is frame-shaped and has an insertion position in the middle. The limiting buffer is made of pearl cotton. When the limiting buffer is placed inside the packaging box, at least a portion of the outer periphery of the limiting buffer is in contact with the inner wall of the packaging box, and a locking position is formed between the packaging box and the limiting buffer, thereby restricting the limiting buffer from moving inside the packaging box.

2. The ceiling light packaging assembly according to claim 1, characterized in that: The cross-section of the side of the limiting buffer is circular or polygonal; The outline of the limiting buffer is circular or polygonal.

3. The ceiling light packaging assembly according to claim 2, characterized in that: When the cross-section is polygonal, the cross-section is a regular polygon, or The cross-section is an irregular polygon; When the irregular polygon is an irregular pentagon, the irregular pentagon has a base, a first side, a second side, a top edge, and a supporting hypotenuse. The base connects the first end of the first side and the first end of the second side. The first side is located close to the insertion position, and the length of the first side is less than the length of the second side. The first end of the top edge connects to the second end of the second side. The supporting hypotenuse connects the second end of the first side and the second end of the top edge. The base and the second side are fitted against the inner wall of the packaging box. When the irregular polygon is a right trapezoid, the right trapezoid has an upper base, a lower base, a right-angled leg, and a sloping leg. The upper base is located close to the insertion position, and the right-angled leg and the lower base are attached to the inner wall of the packaging box. When the irregular polygon is a right triangle, the right triangle has a first right-angled side, a second right-angled side, and a hypotenuse. The hypotenuse is located close to the insertion position, and the first right-angled side and the second right-angled side are attached to the inner wall of the packaging box.

4. The ceiling light packaging assembly according to claim 2, characterized in that: The limiting buffer has multiple notches, and the limiting buffer can be bent through the notches to form the polygon. The notches are located on the side of the limiting buffer close to the insertion position.

5. The ceiling light packaging assembly according to claim 4, characterized in that: The notch is triangular in shape, with the base of the triangle close to the insertion position and the apex angle of the triangle facing the outer periphery of the limiting buffer; or The notch is trapezoidal, with the lower base of the trapezoidal shape located near the insertion position, and the upper base of the triangular shape located near the outer periphery of the limiting buffer; or The notch is rectangular in shape.

6. The ceiling light packaging assembly according to any one of claims 1 to 5, characterized in that: The ceiling light packaging assembly also includes a first cushioning pad, which is placed on top of the slot and adheres to the inner wall of the packaging box and the ceiling light.

7. The ceiling light packaging assembly according to claim 6, characterized in that: The ceiling light packaging assembly also includes a second cushioning pad, which is placed at the bottom of the slot and adheres to the limiting buffer between the limiting buffer and the inner wall of the packaging box.

8. A product set, including a ceiling light, characterized in that: The product kit also includes a ceiling light packaging assembly as described in any one of claims 1 to 7, wherein the ceiling light is inserted into the insertion position and located in the slot.

9. The product kit according to claim 8, characterized in that: The bottom of the ceiling light is flush with the bottom of the limiting buffer; or The bottom of the ceiling light is located within the insertion slot.

10. The product kit according to claim 9, characterized in that: Vertically in the insertion direction of the insertion position, the outer periphery of the ceiling light is located between the outer periphery of the limiting buffer and the insertion position; and / or The ceiling light forces the limiting buffer to fit tightly against the inner wall of the packaging box.