Dynamic simulation flower and flower dynamic art display device

By designing a dynamic simulation flower and flower dynamic art display device, LED lamp beads and opening and closing control components are used to simulate the dynamic changes of flower cores and petals, solving the upgrade needs of public art products and improving the display effect and aesthetics.

CN223183000UActive Publication Date: 2025-08-05SHANGHAI SHENZHEN AOYA GARDEN DESIGN CO LTD
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Patent Information

Application Number
CN202422102803.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-28
Publication Date
2025-08-05
Estimated Expiration
2034-08-28

AI Technical Summary

Technical Problem

In the prior art, technologies such as mechanical transmission, intelligent control, and sensing recognition are rarely used in public art products, resulting in urgent need of upgrading public art products to meet the public's needs for a better living environment and spiritual pursuit.

Method used

A dynamic simulation flower and flower dynamic art display device is designed, including the first flower core simulation mechanism, a dynamic petal simulation mechanism and a flower base. The dynamic changes of the flower core and petals are simulated through LED lamp beads and opening and closing control components, and the display effect is enhanced with the wind-moving decorative mechanism.

Benefits of technology

The dynamic simulation and lighting display of flowers are realized, which enhances the vividness and image of public art products and enhances the display effect of public art works.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The embodiment of the utility model discloses a dynamic simulation flower and a flower dynamic art display device. The dynamic simulation flower comprises a first flower core simulation mechanism, a dynamic petal simulation mechanism and a first flower base, the first flower base is used for bearing the first flower core simulation mechanism and the dynamic petal simulation mechanism; the first flower core simulation mechanism is located at the top of the first flower base, is connected with the dynamic petal simulation mechanism, is used for simulating a flower core and providing illumination, and is also used for moving up and down along with the opening and closing states of the dynamic petal simulation mechanism; the dynamic petal simulation mechanism is arranged at the circumferential position of the first flower base and used for simulating petals and controlling the petals to be opened or closed.
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Description

Technical Field

[0001] The utility model relates to the technical field of mechanical simulation, in particular to a dynamic simulation flower and a flower dynamic art display device. Background Art

[0002] At present, technologies such as mechanical transmission, intelligent control, and sensor recognition have become very mature and have been widely used in industrial production and manufacturing.

[0003] However, designs that combine these technologies with public art products are rare.

[0004] Nowadays, the public is more yearning for a better living environment and rich spiritual pursuits, and public art products are in urgent need of upgrading and enrichment. Utility Model Content

[0005] Based on this, it is necessary to propose a dynamic simulation flower and a flower dynamic art display device to address the above problems.

[0006] The embodiment of the utility model provides a dynamic simulated flower, which includes a first flower core simulation mechanism, a dynamic petal simulation mechanism, and a first flower base;

[0007] The first flower base is used to support the first flower core simulation mechanism and the dynamic petal simulation mechanism;

[0008] The first flower core simulation mechanism is located on top of the first flower base and is connected to the dynamic petal simulation mechanism, and is used to simulate the flower core and provide lighting, and is also used to move up and down with the opening and closing state of the dynamic petal simulation mechanism;

[0009] The dynamic petal simulation mechanism is arranged at a circumferential position of the first flower base, and is used to simulate petals and control the opening or closing of the petals.

[0010] In the above scheme, the first flower core simulation mechanism includes a transparent lampshade, a light source, and a first LED lamp bead. The light source is arranged on the top of the first flower base, and the transparent lampshade 1011 is arranged outside the light source. A plurality of first LED lamp beads are provided and are respectively arranged around the transparent lampshade through flexible elastic parts.

[0011] In the above solution, the first flower core simulation mechanism further includes a second LED lamp bead. A plurality of the second LED lamp beads are provided and are spaced inwardly along the circumference of the lower side of the first flower base.

[0012] In the above solution, the first flower core simulation mechanism further includes a calyx simulation member, and a plurality of the calyx simulation members are provided and spaced apart in the circumferential direction of the lower side of the first flower base.

[0013] In the above solution, the dynamic petal simulation mechanism includes an opening and closing control component and a first petal simulation piece; the opening and closing control component is arranged in the first flower base and connected to a plurality of first petal simulation pieces; the opening and closing control component is also connected to the first flower core simulation mechanism.

[0014] In the above scheme, the opening and closing control component includes a lifting drive, a lifting platform, and a connecting rod unit. The lifting drive is arranged at the bottom of the first flower base, and the output end is connected to the lifting platform arranged in the first flower base. The connecting rod unit is set in a number matching the first petal simulation part, and one end is arranged on the lifting platform, and the other end is connected to one side of the corresponding first petal simulation part.

[0015] In the above scheme, the connecting rod unit includes a horizontal swinging link and a vertical swinging link. One end of the horizontal swinging link is hinged on the lifting platform, and the other end is hinged to one end of the swinging link. The other end of the swinging link is connected to one side of the corresponding first petal simulation component, and the swing point position of the swinging link is coordinated with the first flower base.

[0016] An embodiment of the present invention also provides a flower dynamic art display device, which includes dynamic simulated flowers, static simulated flowers, a base, and a trunk as described above; the base is provided with a number of trunks that matches the number of dynamic simulated flowers and static simulated flowers, and the upper ends of the trunks are connected to the corresponding dynamic simulated flowers or static simulated flowers.

[0017] In the above solution, the device further comprises a pneumatic decoration mechanism, which is arranged on the base through a trunk.

[0018] In the above solution, the static simulated flower includes a second flower core simulation mechanism, a second flower base, and a second petal simulation piece. The second flower core simulation mechanism is provided on the upper side of the second flower base, and a plurality of second petal simulation pieces are provided around the upper side of the second flower base.

[0019] The following beneficial effects are achieved by adopting the embodiments of the present invention:

[0020] The utility model provides light display through the first flower core simulation mechanism on the one hand, and simulates the flower core on the other hand; while performing the display, the dynamic petal simulation mechanism also simulates the petals and controls the opening or closing of the petals, making the entire dynamic simulated flower more vivid and lifelike. BRIEF DESCRIPTION OF THE DRAWINGS

[0021] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0022] in:

[0023] Figure 1 A structural diagram of a dynamic simulated flower is provided for an embodiment of the utility model;

[0024] Figure 2 for Figure 1 A partial enlarged view of area A in the middle;

[0025] Figure 3 The present invention provides a schematic structural diagram of a dynamic simulated flower in an open state.

[0026] Figure 4 A structural schematic diagram of a first flower base in a dynamic simulated flower is provided for an embodiment of the utility model;

[0027] Figure 5 A structural schematic diagram of a flower dynamic art display device is also provided for an embodiment of the present utility model. DETAILED DESCRIPTION

[0028] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0029] The present invention provides a kind of dynamic simulation flower. Figure 1-4 As shown, the dynamic simulated flower includes a first flower core simulation mechanism 101, a dynamic petal simulation mechanism 102, and a first flower base 103;

[0030] The first flower base 103 is used to support the first flower core simulation mechanism 101 and the dynamic petal simulation mechanism 102;

[0031] The first flower core simulation mechanism 101 is located on top of the first flower base 103 and is connected to the dynamic petal simulation mechanism 102. It is used to simulate the flower core and provide lighting, and is also used to move up and down with the opening and closing state of the dynamic petal simulation mechanism 102.

[0032] The dynamic petal simulation mechanism 102 is arranged at a circumferential position of the first flower base 103, and is used to simulate petals and control the opening or closing of the petals.

[0033] The present invention provides a light display through the first flower core simulation mechanism 101 on the one hand, and simulates the flower core on the other hand; while performing the display, the dynamic petal simulation mechanism 102 simulates the petals and controls the opening or closing of the petals, making the entire dynamic simulated flower more vivid and lifelike.

[0034] Furthermore, the first flower core simulation mechanism 101 includes a transparent lampshade 1011, a light source, and a first LED lamp bead 1012. The light source is arranged on the top of the first flower base 103, and the transparent lampshade 1011 is arranged outside the light source. A plurality of first LED lamp beads 1012 are provided and are respectively arranged around the transparent lampshade 1011 through flexible elastic members 10121.

[0035] For example, the transparent lampshade 1011 is made of acrylic, and the light source is an LED lamp. The first LED lamp bead 1012 simulates a flower surrounded by many dot-shaped blue luminous stamens.

[0036] The first flower core simulation mechanism 101 further includes a plurality of second LED lamp beads 1013 , which are arranged in a circumferential direction of the lower side of the first flower base 103 at intervals.

[0037] The first flower core simulation mechanism 101 further includes a calyx simulation member 1014 . A plurality of the calyx simulation members 1014 are arranged at intervals in the circumferential direction of the lower side of the first flower base 103 .

[0038] For example, taking the four-o'clock vine as an example, the calyx simulation part 1014 adopts an appearance design similar to that of the four-o'clock vine.

[0039] Furthermore, the dynamic petal simulation mechanism 102 includes an opening and closing control component 1021 and a first petal simulation part 1022; the opening and closing control component 1021 is arranged in the first flower base 103 and is connected to a plurality of first petal simulation parts 1022; the opening and closing control component 1021 is also connected to the first flower core simulation mechanism 101.

[0040] For example, taking the four-leaf jasmine as an example, the first petal simulation part 1022 adopts an appearance design similar to that of the four-leaf jasmine.

[0041] The opening and closing control component 1021 includes a lifting drive 10211, a lifting platform 10212, and a connecting rod unit 10213. The lifting drive 10211 is arranged at the bottom of the first flower base 103, and the output end is connected to the lifting platform 10212 arranged in the first flower base 103. The connecting rod unit 10213 is set in a number matching the first petal simulation component 1022, and one end is arranged on the lifting platform 10212, and the other end is connected to one side of the corresponding first petal simulation component 1022.

[0042] The connecting rod unit 10213 includes a horizontal swinging link 102131 and a vertical swinging link 102132. One end of the horizontal swinging link 102131 is hinged on the lifting platform 10212, and the other end is hinged to one end of the swinging link 102132. The other end of the swinging link 102132 is connected to one side of the corresponding first petal simulation part 1022. The swinging point position of the swinging link 102132 is coordinated with the first flower base 103.

[0043] Exemplarily, the lifting drive member 10211 adopts a cylinder, and the lifting drive member 10211 pushes the lifting platform 10212 upward. Under the rising action of the lifting platform 10212, the horizontal swing link 102131 swings horizontally inward, driving one end of the swing link 102132 to swing downward in the vertical direction. Under the limit of the swing point position, the other end of the swing link 102132 swings upward in the vertical direction. At this time, the first petal simulation member 1022 is in an open state, as shown in FIG. Figure 3 As shown;

[0044] When closing the first petal simulation member 1022, the lifting drive member 10211 pulls the lifting platform 10212 downward. Under the descending action of the lifting platform 10212, the horizontal swing link 102131 swings horizontally inward, driving one end of the swing link 102132 to swing upward in the vertical direction. Under the limit of the swing point position, the other end of the swing link 102132 swings downward in the vertical direction. At this time, the first petal simulation member 1022 is in a closed state. Figure 1 shown.

[0045] Furthermore, a plurality of connecting rods 102121 are arranged on the upper side of the lifting platform 10212 in a circumferential direction, and a first platform 102122 and a second platform 102123 are arranged on the upper ends of the plurality of connecting rods 102121 in sequence. The first platform 102122 is used to connect the first LED lamp bead 1012 through a flexible elastic member 10121, and the second platform 102123 is used to connect the first LED lamp bead 1012 through a flexible elastic member 10121, and is also used to install a transparent lampshade 1011 and a light source. In this way, the setting of the two-layer platform makes the Huarui simulation more realistic.

[0046] The present invention also provides a flower dynamic art display device. Figure 5 As shown, the device includes a dynamic simulated flower 1, a static simulated flower 2, a base 3, and a trunk 4; the base 3 is provided with a number of trunks 4 that match the number of dynamic simulated flowers 1 and static simulated flowers 2, and the upper end of the trunk 4 is connected to the corresponding dynamic simulated flower 1 or static simulated flower 2.

[0047] Furthermore, the device also includes a pneumatic decoration mechanism 5 , which is arranged on the base 3 through the trunk 4 .

[0048] The pneumatic decoration mechanism 5 includes a plurality of circular rings and a rotating shaft. The plurality of circular rings are arranged in sequence from the inside to the outside and their sizes gradually increase. The rotating shaft passes through the plurality of circular rings in a vertical direction and is connected to the trunk 4.

[0049] Each ring can rotate along the axis under the action of wind.

[0050] The static simulated flower 2 includes a second flower core simulation mechanism 201, a second flower base 202, and second petal simulation pieces 203. The second flower core simulation mechanism 201 is provided on the upper side of the second flower base 202, and a plurality of second petal simulation pieces 203 are provided around the upper side of the second flower base 202.

[0051] The plurality of second petal simulation pieces 203 are tilted and arranged on the second flower base 202 in a semi-folded state.

[0052] like Figure 1-4 As shown, the dynamic simulated flower 1 includes a first flower core simulation mechanism 101, a dynamic petal simulation mechanism 102, and a first flower base 103;

[0053] The first flower base 103 is used to support the first flower core simulation mechanism 101 and the dynamic petal simulation mechanism 102;

[0054] The first flower core simulation mechanism 101 is located on top of the first flower base 103 and is connected to the dynamic petal simulation mechanism 102. It is used to simulate the flower core and provide lighting, and is also used to move up and down with the opening and closing state of the dynamic petal simulation mechanism 102.

[0055] The dynamic petal simulation mechanism 102 is arranged at a circumferential position of the first flower base 103, and is used to simulate petals and control the opening or closing of the petals.

[0056] Furthermore, the first flower core simulation mechanism 101 includes a transparent lampshade 1011, a light source, and a first LED lamp bead 1012. The light source is arranged on the top of the first flower base 103, and the transparent lampshade 1011 is arranged outside the light source. A plurality of first LED lamp beads 1012 are provided and are respectively arranged around the transparent lampshade 1011 through flexible elastic members 10121.

[0057] For example, the transparent lampshade 1011 is made of acrylic, and the light source is an LED lamp. The first LED lamp bead 1012 simulates a flower surrounded by many dot-shaped blue luminous stamens.

[0058] The first flower core simulation mechanism 101 further includes a plurality of second LED lamp beads 1013 , which are arranged in a circumferential direction of the lower side of the first flower base 103 at intervals.

[0059] The first flower core simulation mechanism 101 further includes a calyx simulation member 1014 . A plurality of the calyx simulation members 1014 are arranged at intervals in the circumferential direction of the lower side of the first flower base 103 .

[0060] For example, taking the four-o'clock vine as an example, the calyx simulation part 1014 adopts an appearance design similar to that of the four-o'clock vine.

[0061] Furthermore, the dynamic petal simulation mechanism 102 includes an opening and closing control component 1021 and a first petal simulation part 1022; the opening and closing control component 1021 is arranged in the first flower base 103 and is connected to a plurality of first petal simulation parts 1022; the opening and closing control component 1021 is also connected to the first flower core simulation mechanism 101.

[0062] For example, taking the four-leaf jasmine as an example, the first petal simulation part 1022 adopts an appearance design similar to that of the four-leaf jasmine.

[0063] The opening and closing control component 1021 includes a lifting drive 10211, a lifting platform 10212, and a connecting rod unit 10213. The lifting drive 10211 is arranged at the bottom of the first flower base 103, and the output end is connected to the lifting platform 10212 arranged in the first flower base 103. The connecting rod unit 10213 is set in a number matching the first petal simulation component 1022, and one end is arranged on the lifting platform 10212, and the other end is connected to one side of the corresponding first petal simulation component 1022.

[0064] The connecting rod unit 10213 includes a horizontal swinging link 102131 and a vertical swinging link 102132. One end of the horizontal swinging link 102131 is hinged on the lifting platform 10212, and the other end is hinged to one end of the swinging link 102132. The other end of the swinging link 102132 is connected to one side of the corresponding first petal simulation part 1022. The swinging point position of the swinging link 102132 is coordinated with the first flower base 103.

[0065] Exemplarily, the lifting drive member 10211 adopts a cylinder, and the lifting drive member 10211 pushes the lifting platform 10212 upward. Under the rising action of the lifting platform 10212, the horizontal swing link 102131 swings horizontally inward, driving one end of the swing link 102132 to swing downward in the vertical direction. Under the limit of the swing point position, the other end of the swing link 102132 swings upward in the vertical direction. At this time, the first petal simulation member 1022 is in an open state, as shown in FIG. Figure 3 As shown;

[0066] When closing the first petal simulation member 1022, the lifting drive member 10211 pulls the lifting platform 10212 downward. Under the descending action of the lifting platform 10212, the horizontal swing link 102131 swings horizontally inward, driving one end of the swing link 102132 to swing upward in the vertical direction. Under the limit of the swing point position, the other end of the swing link 102132 swings downward in the vertical direction. At this time, the first petal simulation member 1022 is in a closed state. Figure 1 shown.

[0067] Furthermore, a plurality of connecting rods 102121 are arranged on the upper side of the lifting platform 10212 in a circumferential direction, and a first platform 102122 and a second platform 102123 are arranged on the upper ends of the plurality of connecting rods 102121 in sequence. The first platform 102122 is used to connect the first LED lamp bead 1012 through a flexible elastic member 10121, and the second platform 102123 is used to connect the first LED lamp bead 1012 through a flexible elastic member 10121, and is also used to install a transparent lampshade 1011 and a light source. In this way, the setting of the two-layer platform makes the Huarui simulation more realistic.

[0068] Illustratively, the second flower core simulation mechanism 201 includes a lampshade and an LED light source disposed in the lampshade.

[0069] The above disclosure is only a preferred embodiment of the present invention, and certainly cannot be used to limit the scope of rights of the present invention. Therefore, equivalent changes made according to the claims of the present invention are still within the scope covered by the present invention.

Claims

1. A dynamic simulated flower, characterized in that: The dynamic simulated flower comprises a first flower core simulation mechanism, a dynamic petal simulation mechanism, and a first flower base; The first flower base is used to support the first flower core simulation mechanism and the dynamic petal simulation mechanism; The first flower core simulation mechanism is located on top of the first flower base and is connected to the dynamic petal simulation mechanism, and is used to simulate the flower core and provide lighting, and is also used to move up and down with the opening and closing state of the dynamic petal simulation mechanism; The dynamic petal simulation mechanism is arranged at a circumferential position of the first flower base, and is used to simulate petals and control the opening or closing of the petals.

2. The dynamic simulated flower according to claim 1, characterized in that: The first flower core simulation mechanism includes a transparent lampshade, a light source, and a first LED lamp bead. The light source is arranged on the top of the first flower base, and the transparent lampshade is arranged outside the light source. A plurality of first LED lamp beads are arranged and are respectively arranged around the transparent lampshade through flexible elastic parts.

3. The dynamic simulated flower according to claim 2, characterized in that: The first flower core simulation mechanism further includes a second LED lamp bead. A plurality of the second LED lamp beads are provided and are spaced inwardly along the circumference of the lower side of the first flower base.

4. The dynamic artificial flower according to claim 3, characterized in that: The first flower core simulation mechanism further includes a calyx simulation member, and a plurality of the calyx simulation members are provided and spaced apart in the circumferential direction of the lower side of the first flower base.

5. The dynamic artificial flower according to any one of claims 1 to 4, characterized in that: The dynamic petal simulation mechanism includes an opening and closing control component and a first petal simulation piece; the opening and closing control component is arranged in the first flower base and connected to a plurality of first petal simulation pieces; the opening and closing control component is also connected to the first flower core simulation mechanism.

6. The dynamic artificial flower according to claim 5, characterized in that: The opening and closing control component includes a lifting drive, a lifting platform, and a connecting rod unit. The lifting drive is arranged at the bottom of the first flower base, and the output end is connected to the lifting platform arranged in the first flower base. The connecting rod unit is set in a number matching the first petal simulation part, and one end is arranged on the lifting platform, and the other end is connected to one side of the corresponding first petal simulation part.

7. The dynamic artificial flower according to claim 6, characterized in that: The connecting rod unit includes a horizontal swing connecting rod and a vertical swing connecting rod. One end of the horizontal swing connecting rod is hinged on the lifting platform, and the other end is hinged to one end of the swing connecting rod. The other end of the swing connecting rod is connected to one side of the corresponding first petal simulation component. The swing point position of the swing connecting rod is coordinated with the first flower base.

8. A flower dynamic art display device, characterized in that: The device includes a dynamic simulated flower, a static simulated flower, a base, and a trunk according to any one of claims 1 to 7; the base is provided with a number of trunks matching the number of dynamic simulated flowers and static simulated flowers, and the upper end of the trunk is connected to the corresponding dynamic simulated flower or static simulated flower.

9. The flower dynamic art display device according to claim 8, characterized in that: The device also includes a pneumatic decoration mechanism, which is arranged on the base through a trunk.

10. The flower dynamic art display device according to claim 9, characterized in that: The static simulated flower includes a second flower core simulation mechanism, a second flower base, and second petal simulation pieces. The second flower core simulation mechanism is arranged on the upper side of the second flower base, and a plurality of second petal simulation pieces are arranged around the upper side of the second flower base.