Assembled simulation toy flower

Through innovative design of the first stem component, petal component, and support component, and by using the assembly method of limiting holes and preset phase angles, the problems of high assembly difficulty and insufficient simulation level of traditional toy flowers are solved, achieving a realistic flower effect and a simple and easy-to-operate toy flower experience.

CN223860250UActive Publication Date: 2026-02-03SHANTOU CHAOBOLI TOYS CO LTD
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Patent Information

Application Number
CN202520498678.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-20
Publication Date
2026-02-03
Estimated Expiration
2035-03-20

AI Technical Summary

Technical Problem

Traditional toy flowers are difficult to assemble and lack realism. While existing modular toy flowers reduce assembly difficulty, their realism is still poor.

Method used

The design employs a first stem component, petal components, and a support component. Through the assembly method of limiting holes and preset phase angles, a multi-ring interlaced petal structure is formed. A realistic flower effect is achieved by utilizing flexible materials and positioning grooves.

Benefits of technology

It enables the creation of realistic flower shapes with a small number of components and simple assembly, making it suitable for the general public, enriching the fun and improving the simulation effect.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an assembled simulation toy flower, and belongs to the field of toy flowers and decorative artificial flowers. The petals fixing device is composed of the first stem piece, the petal pieces, the bearing pieces and the like, each petal piece can be arranged on the rod portion of the first stem piece in a penetrating mode through the penetrating hole in the middle, each bearing piece is provided with a plurality of bearing portions, and the petal pieces can be borne and shaped to form a circle of petals. Each bearing piece is arranged on the rod portion of the first stem piece in a penetrating mode at a preset phase angle through a limiting hole of the bearing piece, so that the assembly angle of the bearing piece and the rod portion is unique, the bearing portions of the bearing pieces can be matched with one another, the circles of petals formed by the petal bearing pieces are staggered with one another, and the simulated flower body has the vivid effect. A user can assemble the vivid flower body only by simply assembling the petal pieces and the bearing pieces, so that the vivid flower body can be manufactured by himself / herself through a small number of components and simple assembly, and the vivid flower body has difficulty suitable for the public, rich interestingness and easy-to-obtain playing results.
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Description

Technical Field

[0001] This utility model relates to the field of toy flowers and decorative artificial flowers, and in particular to an assembled simulated toy flower. Background Technology

[0002] Traditional artificial flowers are made by injection molding or cutting fabric, using a hot-pressing process to create textures, and then gluing petals, leaves, and branches together to form lifelike simulated flowers. However, while these products have a realistic effect, they require complex equipment and tools, and consumers cannot participate in the production process, making the products lack fun and appeal.

[0003] To enhance the fun, existing technologies often involve making petals, leaves, and branches into individual components, which consumers then glue or snap together themselves. However, these products have a large number of components, requiring a specific assembly process and fixed installation positions to create the asymmetrical shape of the flower. This demands strong hands-on skills and patience from the consumer to assemble the toy flower. While reducing the number of components lowers the assembly difficulty, parts like petals struggle to mimic the non-layered characteristics of real flowers, resulting in a less realistic toy flower.

[0004] This shows that current toy flowers suffer from both high assembly difficulty and an inability to achieve a high degree of realism. Utility Model Content

[0005] To address the problems existing in the prior art, the main objective of this utility model is to provide an assembled simulated toy flower that can be formed into a realistic flower body through simple assembly of a small number of components.

[0006] To achieve the above objectives, the present invention adopts the following technical solution:

[0007] An assembled simulated toy flower, comprising a first stem, petals, and a support;

[0008] The first stem member includes a stem portion and an end portion disposed at one end of the stem portion;

[0009] The petal component is provided in at least two parts, and each petal component has a through hole in the middle;

[0010] The support member is provided in at least two, and each support member includes a base and at least two support portions distributed circumferentially on the base;

[0011] The base of the support member is provided with a limiting hole, the cross-sectional shape of which matches the full-length cross-sectional shape of the rod, so that the support member passes through the limiting hole at a preset phase angle onto the rod of the first stem member; the petal member is disposed on the rod of the first stem member through a through hole and abuts against the support member and the end or between the support members to form a ring of petals.

[0012] Preferably, when each of the support members is inserted through the limiting hole onto the first stem member, the support portion of the rear support member covers the gap between two adjacent support portions of the front support member.

[0013] Preferably, the two side edges of the support portion of each of the supports are curved inward relative to the center, and / or the degree to which one side edge of the support portion of each of the supports is curved inward relative to the center is greater than the degree to which the other side edge is curved inward relative to the center.

[0014] Preferably, the base of the rear support member wraps around the base of the front support member, and the support portion of the rear support member is distributed on the outside of the support portion of the front support member.

[0015] Preferably, the end of the first stem member is provided with at least two protruding lining portions, and during assembly, each support portion of the foremost support member is located outside the lining portion on the end.

[0016] Preferably, the petal is configured to be made of a flexible material and has a circular sheet-like structure with a through hole at its center.

[0017] Preferably, the petal component is configured to be made of a flexible material, with a through hole in the center and at least two petal-shaped structures distributed circumferentially on its outer edge; the number of support portions of the support component is matched with the number of petal portions of the petal component it supports.

[0018] Preferably, the stem portion of the first stem member is configured with a cylindrical profile and a positioning groove extending circumferentially is provided on one side of the cylindrical profile. The limiting hole of the support member has a circular cross-sectional shape and a protrusion on one side that matches the positioning groove, so as to allow the support member to pass through the limiting hole and be inserted into the stem portion of the first stem member and to constrain the rotation of the support member relative to the first stem member.

[0019] Preferably, a locking arm is provided on one side of the limiting hole of the last support member, and a locking protrusion is provided in the positioning groove of the first stem member. The locking arm of the last support member can lock and abut against the locking protrusion of the stem to fix each of the support members.

[0020] Preferably, it also includes a second stem and a branch / leaf member, the second stem being snapped to the rear end of the first stem, the second stem being snapped to the branch / leaf member, the rearmost support member being shaped like a flower holder, and the first and second stems having a textured structure with concave and convex branches.

[0021] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0022] This utility model discloses a simulated toy flower, comprising a first stem, multiple petal pieces, and multiple support pieces. Each petal piece can be inserted into the stem of the first stem through a central through-hole. Each support piece has multiple supporting parts to support and shape the petal piece into a ring of petals. Each support piece is inserted into the stem of the first stem through its limiting hole at a preset phase angle, ensuring a unique assembly angle between the support piece and the stem. The supporting parts of each support piece can cooperate with each other, so that the rings of petals formed by each supporting petal piece interweave, achieving a realistic effect for the simulated flower. Users only need to assemble the petal pieces and support pieces to create a realistic flower, thus enabling them to create their own realistic flower with a small number of components and simple assembly. It offers a suitable level of difficulty, rich fun, and easily obtainable play results.

[0023] The present invention will be further described below with reference to the accompanying drawings. Attached Figure Description

[0024] Figure 1 A three-dimensional structural diagram of the assembled simulated toy flower according to an embodiment of the present invention;

[0025] Figure 2 A three-dimensional structural diagram of the dispersed state of an assembled simulated toy flower according to an embodiment of the present invention.

[0026] Figure 3 A top view of the first support component of the assembled simulated toy flower according to an embodiment of the present invention;

[0027] Figure 4 A top view of the second support component of the assembled simulated toy flower according to an embodiment of the present invention;

[0028] Figure 5 A top view of the third support component of the assembled simulated toy flower according to an embodiment of the present invention;

[0029] Figure 6 A top view of the assembled simulated toy flower according to an embodiment of the present invention.

[0030] Figure 7A top view of the petal component of a first example of an assembled simulated toy flower according to an embodiment of the present invention;

[0031] Figure 8 A top view of the petal component of a second example of an assembled simulated toy flower according to an embodiment of the present invention.

[0032] Figure label:

[0033] 10. First stem member; 11. Stem section; 111. Positioning groove; 112. Locking protrusion; 13. End; 14. Liner;

[0034] 20. Petal-shaped part; 21. Through hole; 22. Petal section;

[0035] 30a. First support component; 30b. Second support component; 30c. Third support component; 31. Base; 32. Support portion; 33. Limiting hole; 331. Protrusion; 34. Locking arm;

[0036] 40. Second stem member. Detailed Implementation

[0037] To better illustrate the purpose, technical solution, and advantages of this utility model, the specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings and examples. The following examples are used to illustrate this utility model, but are not intended to limit its scope.

[0038] like Figures 1 to 8 The image shows an assembled simulated toy flower according to an embodiment of the utility model. The simulated toy flower includes a first stem 10, petals 20, a support, a second stem 40, and branches and leaves (not shown in the figure).

[0039] In detail, to achieve the purpose of this utility model, reference is made to... Figure 1 and Figure 2 The system includes at least two petal pieces 20, each with a through hole 21 in its center to correspond to the formation of one ring of petals per layer of the desired simulated flower. At least two support pieces are provided, their number corresponding to the number of petal layers in the desired simulated flower. In this embodiment, three support pieces are provided: a first support piece 30a, a second support piece 30b, and a third support piece 30c, and the number of petal pieces 20 is also configured to be three. Each support piece includes a base 31 and a support portion 32. In each support piece, at least two support portions 32 are provided, distributed circumferentially around the outer periphery of the base 31. In this embodiment, three first support pieces 30a and three second support pieces 30b are provided, while six third support pieces 30c are provided. In other embodiments, each support piece may have 2-6 support portions 32, depending on the number of petals in the corresponding layer of the desired simulated flower.

[0040] The first stem member 10 includes a stem portion 11 and an end portion 13. The end portion 13 is located at one end of the stem portion 11. Each support member has a limiting hole 33 at its base 31. The cross-sectional shape of the limiting hole 33 of each support member is matched with the full-length cross-sectional shape of the stem portion 11 of the first stem member 10, so that the support member passes through the limiting hole 33 and is mounted on the stem portion 11 of the first stem member 10 at a preset phase angle.

[0041] One of the petal pieces 20 is disposed on the stem portion 11 of the first stem piece 10 through its through hole 21 and is held within the end 13. The first support piece 30a is then disposed on the stem portion 11 of the first stem piece 10 through its limiting hole 33 and abuts against the petal piece 20, thereby positioning the petal piece 20 between the first support piece 30a and the end of the first stem piece 10. Each support portion 32 of the first support piece 30a supports multiple independent petal shapes on the petal piece 20, forming the innermost ring of petals.

[0042] Furthermore, another petal 20 is disposed on the first stem 10 through its through hole 21. The second support 30b is disposed on the first stem 10 through its limiting hole 33, positioning the petal 20 between the first support 30a and the second support 30b. Each support portion 32 of the second support 30b supports multiple independent petal shapes on the petal 20, forming a second ring of distributed petals.

[0043] Similarly, the petal 20 and the third support 30c are sequentially inserted onto the first stem 10, positioning the petal 20 between the second support 30b and the third support 30c. Each support portion 32 of the third support 30c supports multiple independent petal shapes on the petal 20, forming a third ring of petals.

[0044] Meanwhile, the first support 30a, the second support 30b and the third support 30c are respectively positioned at a preset phase angle on the stem portion 11 of the first stem 10, so that each support portion 32 of each support can support a ring of petals formed in its own preset manner, and the petals of each ring can interweave with each other to form a realistic simulated flower shape.

[0045] In use, the user only needs to alternately assemble the petal piece 20 and the support piece onto the first stem piece 10. The support part 32 of each support piece can support the petal piece 20 to form multiple petal shapes. The phase angle of the support piece and the first stem piece 10 is unique. After assembly, each support piece cooperates with the others to simulate a realistic effect of interlacing petals in different layers of the flower body.

[0046] Therefore, it can be seen that the toy flower of this utility model can achieve a small number of components, simple assembly operation, and realistic flower body.

[0047] Specifically, in this embodiment, as follows: Figures 3 to 6 As shown, when each support member is inserted through the limiting hole 33 onto the first stem member 10, the support portion 32 of the rear support member covers the gap between two adjacent support portions 32 of the front support member. In other words, the first support member 30a has three support portions 32 evenly distributed circumferentially, with gaps between adjacent support portions 32, and each support portion 32 is angularly distributed relative to the preset phase angle of installation with respect to the limiting hole 33. The second support member 30b also has three support portions 32 evenly distributed circumferentially, with gaps between adjacent support portions 32, and each support portion 32 of the second support member 30b is angularly distributed relative to the preset phase angle of installation with respect to the limiting hole 33, and this angular distribution causes the support portions 32 of the second support member 30b to be located at the gaps between two adjacent support portions 32 of the first support member 30a. Similarly, although the third support member 30c has six support portions 32, during assembly, there is at least one support portion 32 of the third support member 30c on the outer side of the gap between two adjacent support portions 32 of each second support member 30b. It can be understood that the support portion 32 of each support member supports and shapes a petal, and the support portions 32 of the front and rear support members are staggered, so that the petals of the front and rear circles are also staggered.

[0048] Specifically, in this embodiment, as follows: Figures 3 to 6 As shown, the base 31 of the rear support member wraps around the base 31 of the front support member, and the support portion 32 of the rear support member is distributed outside the support portion 32 of the front support member. Specifically, the base 31 of each support member is roughly bowl-shaped. The base 31 of the first support member 30a is smaller in size, the base 31 of the second support member 30b can wrap around the base 31 of the first support member 30a, and the base 31 of the third support member 30c can wrap around the base 31 of the second support member 30b, thereby making the supported petal 20 more compact. In addition, the circumferential dimension of the support portion 32 of the first support member 30a is smaller, while the support portion 32 of the second support member 30b is distributed on the outer periphery of the support portion 32 of the first support member 30a, and the support portion 32 of the third support member 30c is distributed on the outer periphery of the support portion 32 of the second support member 30b, thus forming a multi-layered petal.

[0049] Specifically, in this embodiment, as follows: Figures 3 to 6As shown, the end 13 of the first stem member 10 is provided with at least two protruding lining portions 14. During assembly, each support portion 32 of the first support member 30a is located outside each lining portion 14 on the end 13. Specifically, three lining portions 14 are provided on the end 13 of the first stem member 10. The angle between each lining portion 14 and the stem portion 11 is such that when the first stem member 10 is assembled at a preset phase angle, the outer side of each lining portion 14 on the end 13 is the outer side of each support portion 32 of the first support member 30a. Thus, the foremost petal member 20 is positioned between the support portion 32 of the first support member 30a and the lining portion 14 of the end 13, thereby making the petal shape formed by the petal member 20 more realistic.

[0050] Specifically, in this embodiment, as follows: Figures 1 to 5 As shown, the stem portion 11 of the first stem member 10 is configured with a cylindrical profile, and a positioning groove 111 extending circumferentially is provided on one side of the cylindrical profile. The limiting holes 33 of the first support member 30a, the second support member 30b, and the third support member 30c have the same cross-sectional shape, all being circular, and each has a protrusion 331 on one side that mates with the positioning groove 111. Taking the first support member 30a as an example, when the first support member 30a is inserted into the first stem member 10, the protrusion 331 of the limiting hole 33 will abut against the positioning groove 111 of the stem portion 11, preventing the cylindrical profile of the stem portion 11 from rotating. At the same time, the protrusion 331 of the limiting hole 33 needs to have the same installation phase angle as the positioning groove 111 of the stem portion 11; otherwise, the protrusion 331 of the limiting hole 33 will abut against the cylindrical profile, thus preventing the first support member 30a from being inserted into the stem portion 11. Thus, the support member can be inserted through the limiting hole 33 onto the rod portion 11 of the first stem member 10 at a preset phase angle. It can be understood that, according to other embodiments of this application, the support member can also be inserted through the limiting hole 33 onto the rod portion 11 of the first stem member 10 in other ways while restricting the rotation of the support member relative to the first stem member 10.

[0051] Specifically, in this embodiment, as follows: Figure 1 , Figure 2 and Figure 5As shown, a locking arm 34 is provided on one side of the third limiting hole 33, and a locking protrusion 112 is provided in the positioning groove 111 of the rod portion 11 of the first stem member 10. The locking arm 34 of the last support member can lock and abut against the locking protrusion 112 of the rod portion 11 to fix each support member. It can be understood that the locking protrusion 112 will not exceed the top of the positioning groove 111, so that when the first support member 30a, the second support member 30b, and the third support member 30c are inserted into the rod portion 11, the protrusion 331 of the limiting hole 33 locks the locking protrusion 112 of the rod portion 11. Specifically, in this embodiment, the rod portion 11 is provided with multiple locking protrusions 112, so that the same first stem member 10 can be adapted to different numbers of support members. For example, the first stem member 10 can be equipped with three support members, with the last support member locked in the frontmost locking protrusion 112; the first stem member 10 can be equipped with four support members, with the last support member locked in the middle locking protrusion 112, and so on.

[0052] like Figures 3 to 5 As shown, the two side edges of the support portion 32 of each of the supporting members are curved inward relative to the center, so that when the support portion 32 supports the petal member 20, it forms a shape that curves inward on both sides, thereby simulating the shape of a petal. Figure 3 As shown, the side edge of the support portion 32 of the first support member 30a bends inward more than the side edge bends inward more than the side edge bends inward more than the side edge bends inward more than the side edge bends inward more than the side edge bends inward more than the side edge bends inward more when the support portion 32 of the first support member 30a supports the petal member 20, thereby simulating a realistic effect of petals of the same ring overlapping each other.

[0053] Specifically, in this embodiment, as follows: Figure 7 As shown, in a simple example, the petal 20 is made of a flexible material, with a through hole 21 in the center, and is configured as a circular sheet structure. Taking the first support member 30a as an example, under its support, the edge of the circular sheet structure of the petal 20 will be deformed into a cup shape. At the same time, the edges of the petal 20 will form three arc-shaped bends at each support portion 32 of the first support member 30a, forming three petal shapes in a circumferential ring.

[0054] Specifically, in this embodiment, as follows: Figure 8 As shown, in a more realistic example, the petal component 20 is made of a flexible material, with a through hole 21 in the center, and has a sheet-like structure. At least two petal portions 22 are evenly distributed around its outer circumference. In this example, the petal component 20 has three petal portions 22. Taking the first support component 30a as an example, under its supporting action, each petal portion 22 bends forward relative to the center. Each support portion 32 of the first support component 30a supports one petal portion 22, causing the petal portion 22 to transform from a flat sheet shape into a petal shape with both sides curving inwards.

[0055] Specifically, in this embodiment, as follows: Figure 1 As shown, the front end of the second stem member 40 is snapped onto the rear end of the first stem member 10, thereby extending the stem length of the toy flower and preventing the first stem member 10 from being too long and difficult to insert components. The second stem member 40 is snapped onto the branch and leaf member, thus simulating the branches and leaves of the flower. The third support member 30c is set in the shape of a flower holder, simulating the flower holder of the flower, and directly serving as the external viewing part of the flower. The first support member 30a and the second support member 30b will be hidden inside the petal member 20 after assembly. The first stem member 10 and the second stem member 40 are provided with a textured structure of concave and convex branches, and each petal member 20 can also be embossed with the textured structure of petals, thus making the toy flower more realistic.

[0056] The above embodiments mainly describe the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model.

Claims

1. An assemblable simulated toy flower, characterized in that, It includes a first stem member (10), a petal member (20), and supporting members (30a, 30b, 30c); The first stem member (10) includes a stem portion (11) and an end portion (13) disposed at one end of the stem portion (11); At least two petal pieces (20) are provided, and each petal piece (20) has a through hole (21) in the middle. At least two of the support members (30a, 30b, 30c) are provided, and each support member (30a, 30b, 30c) includes a base (31) and at least two support portions (32) circumferentially distributed on the base (31); The base (31) of the support member (30a, 30b, 30c) is provided with a limiting hole (33). The cross-sectional shape of the limiting hole (33) matches the full-length cross-sectional shape of the rod (11) so that the support member (30a, 30b, 30c) passes through the limiting hole (33) and is inserted into the rod (11) of the first stem member (10) at a preset phase angle. The petal member (20) is provided on the rod (11) of the first stem member (10) through the through hole (21) and abuts against the support member (30a, 30b, 30c) and the end (13) or between the support member (30a, 30b, 30c) and the support member (30a, 30b, 30c) to form a ring of petals.

2. The as-assembled simulated toy flower according to claim 1, characterized in that, When each of the support members (30a, 30b, 30c) is inserted through the limiting hole (33) onto the first stem member (10), the support portion (32) of the rear support member (30a, 30b, 30c) covers the gap between two adjacent support portions (32) of the front support member (30a, 30b, 30c).

3. The as-assembled simulated toy flower according to claim 1, characterized in that, The two sides of the support portion (32) of each of the supports (30a, 30b, 30c) are bent inward relative to the center, and / or the degree to which one side of the support portion (32) of each of the supports (30a, 30b, 30c) is bent inward relative to the center is greater than the degree to which the other side is bent inward relative to the center.

4. The assembled simulated toy flower according to claim 1, characterized in that, The base (31) of the rear support (30a, 30b, 30c) wraps around the base (31) of the front support (30a, 30b, 30c), and the support portion (32) of the rear support (30a, 30b, 30c) is distributed on the outside of the support portion (32) of the front support (30a, 30b, 30c).

5. The assembled simulated toy flower according to claim 1, characterized in that, The end (13) of the first stem member (10) is provided with at least two protruding (331) lining portions (14), and during assembly, the support portions (32) of the foremost support members (30a, 30b, 30c) are located outside the lining portions (14) on the end (13).

6. The as-assembled simulated toy flower according to claim 1, characterized in that, The petal (20) is configured to be made of a flexible material and has a circular sheet structure with a through hole (21) at its center.

7. The assembled simulated toy flower according to claim 1, characterized in that, The petal component (20) is configured to be made of a flexible material, with a through hole (21) in the center and a sheet-like structure with at least two petal portions (22) distributed circumferentially on its outer edge; the number of the support portions (32) of the support component (30a, 30b, 30c) is matched with the number of petal portions (22) of the petal component (20) it supports.

8. The assembled simulated toy flower according to claim 1, characterized in that, The first stem member (10) has a cylindrical profile in the rod portion (11) and a positioning groove (111) extending circumferentially on one side of the cylindrical profile. The limiting hole (33) of the support member (30a, 30b, 30c) has a circular cross-sectional shape and a protrusion (331) on one side that matches the positioning groove (111) so that the support member (30a, 30b, 30c) passes through the limiting hole (33) into the rod portion (11) of the first stem member (10) and restricts the rotation of the support member (30a, 30b, 30c) relative to the first stem member (10).

9. The assembled simulated toy flower according to claim 8, characterized in that, A locking arm (34) is provided on one side of the limiting hole (33) of the last support member (30a, 30b, 30c). A locking protrusion (112) is provided in the positioning groove (111) of the rod part (11) of the first stem member (10). The locking arm (34) of the last support member (30a, 30b, 30c) can lock and abut against the locking protrusion (112) of the rod part (11) to fix each of the support members (30a, 30b, 30c).

10. The assembled simulated toy flower according to claim 1, characterized in that, It also includes a second stem member (40) and a branch and leaf member. The second stem member (40) is snapped to the rear end of the first stem member (10). The second stem member (40) is snapped to the branch and leaf member. The last support member (30a, 30b, 30c) is set in the shape of a flower holder. The first stem member (10) and the second stem member (40) are provided with a textured structure of concave and convex branches.