Resin simulation plant leaf structure convenient to disassemble and clean
The detachable and assembleable leaf structure solves the problem of the difficulty in thoroughly cleaning resin artificial plant leaves, thus extending their service life.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-10
- Publication Date
- 2026-04-03
AI Technical Summary
Most existing resin artificial plant leaf structures are unidirectional and fixed, and traditional cleaning methods cannot completely remove dirt, leading to long-term dirt erosion and shortening the service life.
Design a detachable and assembleable blade structure. The simulated blade can be detachably connected by components such as a central column, annular slide rail, rectangular snap-fit plate and arc-shaped slider, which facilitates cleaning.
The detachable blade structure allows for easy removal of the blades for thorough cleaning, preventing the accumulation of dirt and dust and extending the lifespan of the blades.
Smart Images

Figure CN224069833U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of simulated plant technology, and in particular to a resin simulated plant leaf structure that is easy to disassemble and clean. Background Technology
[0002] Resin artificial plant leaves are simulated plant leaves made primarily of resin, a high-molecular-weight organic compound with various properties such as good plasticity, durability, and stability. Utilizing these properties, resin is processed through specific techniques, such as injection molding and compression molding, to create leaves of various shapes, colors, and textures that mimic the appearance and texture of real plant leaves. Resin artificial plant leaves are a decorative material with high realism, durability, and ease of maintenance, adding natural vitality and beauty to various places.
[0003] Most existing resin artificial plant leaf structures are unidirectional and fixed for use. Traditional wiping or rinsing methods may not be able to completely remove dirt and dust from the leaf surface, especially in hard-to-reach corners and crevices where dirt and grime can easily accumulate. This long-term erosion by dirt may cause cracks and peeling on the leaf surface, thus shortening the lifespan of the artificial plant.
[0004] Therefore, since most of the existing resin artificial plant leaf structures are fixed in one direction, traditional cleaning methods cannot thoroughly clean them, and long-term dirt erosion will shorten the lifespan of the artificial plants. A resin artificial plant leaf structure that is easy to disassemble and clean can be designed. The leaf structure can be disassembled and assembled to facilitate leaf cleaning and improve the flexibility of the artificial plants. Utility Model Content
[0005] In order to overcome the problem that most of the existing resin artificial plant leaves are fixed in one direction, traditional cleaning methods cannot clean them thoroughly, and long-term dirt erosion will shorten the lifespan of the artificial plants.
[0006] The technical solution of this utility model is as follows: a resin artificial plant leaf structure that is easy to disassemble and clean, including a central column and artificial leaves; multiple sets of detachable artificial leaves for creating a green and natural atmosphere are arranged around the outside of the central column; an annular slide rail is sleeved on the outside of the central column, and an annular groove is opened on the outside of the annular slide rail; a rectangular snap-fit plate is fixedly installed at one end of the artificial leaf; a rectangular snap-fit sleeve is provided at one end of the rectangular snap-fit plate on the artificial leaf; a rectangular snap-fit groove is opened on one side of the rectangular snap-fit sleeve; the rectangular snap-fit plate drives the artificial leaf to be positioned and connected with the rectangular snap-fit sleeve along the rectangular snap-fit groove; an arc-shaped slider is fixedly installed on the side of the rectangular snap-fit sleeve away from the artificial leaf; the arc-shaped slider slides along the annular groove and connects with the annular slide rail.
[0007] Preferably, the simulated blades and the central column are assembled and placed according to the needs of the environment to create a green and natural atmosphere. After the simulated blades have been used for a period of time, they are disassembled and cleaned from the central column to prevent dirt from accumulating on the surface of the simulated blades for a long time. After cleaning, they can be reassembled for continued use.
[0008] Preferably, a connecting cylinder is fixedly installed at the middle of the upper end of the central column, and a first threaded groove is opened on the outside of the connecting cylinder.
[0009] Preferably, a circular connecting groove is provided below the central column corresponding to the connecting cylinder, and a second threaded groove is provided inside the central column located on the inner wall of the circular connecting groove.
[0010] Preferably, the annular slide rail has multiple sets of connecting holes located on the upper and lower sides of the annular slide groove.
[0011] Preferably, a pin is vertically inserted through the center of the rectangular snap-fit sleeve.
[0012] Preferably, a fixing pin is fitted inside the latch sleeve.
[0013] Preferably, a connecting pin is vertically inserted through the middle of the arc-shaped slider.
[0014] The beneficial effects of this utility model are as follows: Simulated leaves are assembled and placed with the central column according to environmental needs to create a green and natural atmosphere. After a period of use, the simulated leaves can be disassembled and cleaned from the central column to prevent dirt from accumulating on the surface of the simulated leaves for a long time. After cleaning, they can be reassembled for continued use. The detachable leaf structure allows the leaves to be easily removed from the plant body for thorough cleaning. Regular disassembly and cleaning effectively prevents the accumulation of dirt, dust, and other impurities on and inside the leaves, thus extending their lifespan. Attached Figure Description
[0015] Figure 1 The diagram shown is a schematic representation of the overall structure of the resin-simulated plant leaf of this utility model.
[0016] Figure 2 The diagram shown is a schematic diagram of the connecting cylinder structure of the resin simulated plant leaf structure of this utility model;
[0017] Figure 3 The diagram shown is a schematic of the annular slide rail structure of the resin simulated plant leaf structure of this utility model.
[0018] Figure 4 The diagram shown is a schematic diagram of the structure of the resin simulated plant leaf of this utility model.
[0019] Explanation of reference numerals in the attached drawings: 1. Central column; 2. Simulated blade; 101. Connecting cylinder; 102. First threaded groove; 103. Circular connecting groove; 104. Second threaded groove; 105. Annular slide rail; 106. Annular slide groove; 107. Connecting hole; 201. Rectangular snap-fit plate; 202. Rectangular snap-fit sleeve; 203. Rectangular snap-fit groove; 204. Pin sleeve; 205. Fixing pin; 206. Arc-shaped slider; 207. Connecting pin. Detailed Implementation
[0020] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0021] Please see Figures 1-4 This utility model provides an embodiment of a resin artificial plant leaf structure that is easy to disassemble and clean, including a central column 1 and artificial leaves 2; multiple sets of detachable artificial leaves 2 for creating a green and natural atmosphere are arranged around the outside of the central column 1; an annular slide rail 105 is sleeved on the outside of the central column 1, and an annular groove 106 is opened on the outside of the annular slide rail 105; a rectangular snap-fit plate 201 is fixedly installed at one end of the artificial leaf 2; a rectangular snap-fit sleeve 202 is provided at one end of the rectangular snap-fit plate 201 on the artificial leaf 2; a rectangular snap-fit groove 203 is opened on one side of the rectangular snap-fit sleeve 202; the rectangular snap-fit plate 201 drives the artificial leaf 2 to be positioned and connected with the rectangular snap-fit sleeve 202 along the rectangular snap-fit groove 203; an arc-shaped slider 206 is fixedly installed on the side of the rectangular snap-fit sleeve 202 away from the artificial leaf 2; the arc-shaped slider 206 slides along the annular groove 106 and is connected to the annular slide rail 105.
[0022] Please see Figures 2-3 In this embodiment, a connecting cylinder 101 is fixedly installed at the middle of the upper end of the central column 1. A first threaded groove 102 is provided on the outside of the connecting cylinder 101. After the simulated blade 2 is assembled, the central column 1 is picked up, and then the connecting cylinder 101 drives a group of central columns 1 to be assembled with another group of central columns 1 through the circular connecting groove 103. A circular connecting groove 103 is provided below the central column 1 corresponding to the connecting cylinder 101. A second threaded groove 104 is provided inside the central column 1 located on the inner wall of the circular connecting groove 103. During the assembly process, the first threaded groove 102 and the second threaded groove 104 are threadedly connected. Multiple sets of connecting holes 107 located on the upper and lower sides of the annular slide rail 105 are provided around the annular slide rail 105. The connecting holes 107 can be used to position and connect the arc-shaped slider 206, improving the flexibility of the simulated blade 2 during assembly.
[0023] Please see Figure 4In this embodiment, a pin sleeve 204 is vertically inserted through the middle of the rectangular snap-fit sleeve 202. The pin sleeve 204 is picked up and passed through the rectangular snap-fit sleeve 202 and the rectangular snap-fit plate 201 for initial fixation. A fixing pin 205 is sleeved inside the pin sleeve 204. The fixing pin 205 is then inserted into the pin sleeve 204 to further fix the rectangular snap-fit sleeve 202 and the rectangular snap-fit plate 201. A connecting pin 207 is vertically inserted through the middle of the arc-shaped slider 206. The connecting pin 207 is picked up and passed through the connecting hole 107 and the arc-shaped slider 206 to position and connect the arc-shaped slider 206 with the annular slide rail 105.
[0024] During operation, depending on environmental requirements, a suitable number of simulated blades 2 are selected and placed around the outside of the central column 1. Then, the rectangular snap-fit plate 201 drives the simulated blades 2 to make initial positioning connections with the rectangular snap-fit sleeve 202 along the rectangular snap-fit groove 203. Then, the pin sleeve 204 is picked up and passed through the rectangular snap-fit sleeve 202 and the rectangular snap-fit plate 201. Then, the fixing pin 205 is inserted into the pin sleeve 204 for further fixing. After the simulated blades 2 are initially assembled, the arc-shaped slider 206 drives the rectangular snap-fit sleeve 202 to slide along the annular slide rail 106 to the appropriate position. Then, the connecting pin 207 is picked up and passed through the connecting hole 107 and the arc-shaped slider 206, so that the arc-shaped slider 206 is positioned and connected with the annular slide rail 105, thus completing the further assembly.
[0025] After the simulated blade 2 is assembled, pick up the central column 1, and then connect the cylindrical column 101 to drive one set of central columns 1 to be assembled with another set of central columns 1 through the circular connecting groove 103. During this process, the first threaded groove 102 and the second threaded groove 104 are threadedly connected. After the simulated blade 2 has been used for a period of time, it can be disassembled and cleaned to avoid dirt accumulating on the surface of the simulated blade 2 for a long time. After cleaning, it can be reassembled and used again.
[0026] Through the above steps, the simulated leaves 2 and the central column 1 are assembled and placed according to the needs of the environment to create a green and natural atmosphere. After the simulated leaves 2 have been used for a period of time, they are disassembled and cleaned from the central column 1 to prevent dirt from accumulating on the surface of the simulated leaves 2 for a long time. After cleaning, they can be reassembled for continued use. Through the detachable and assembleable leaf structure, the leaves can be easily removed from the plant body for thorough cleaning. At the same time, regular disassembly and cleaning can effectively prevent the accumulation of dirt, dust and other impurities on the surface and inside of the leaves, thereby extending the service life of the leaves. This solves the problem that most existing resin simulated plant leaf structures are used in a unidirectional fixed manner, and traditional cleaning methods cannot clean them thoroughly. Long-term dirt erosion will shorten the service life of simulated plants.
Claims
1. A resin-based simulated plant leaf structure that is easy to disassemble and clean, comprising a central column (1); characterized in that: It also includes simulated blades (2); multiple sets of detachable simulated blades (2) for creating a green and natural atmosphere are arranged around the outside of the central column (1); an annular slide rail (105) is fitted on the outside of the central column (1); an annular groove (106) is opened on the outside of the annular slide rail (105); a rectangular snap plate (201) is fixedly installed at one end of the simulated blade (2); a rectangular snap sleeve (202) is provided at one end of the rectangular snap plate (201) installed on the simulated blade (2); a rectangular snap groove (203) is opened on one side of the rectangular snap sleeve (202); the rectangular snap plate (201) drives the simulated blade (2) to be positioned and connected with the rectangular snap sleeve (202) along the rectangular snap groove (203); an arc-shaped slider (206) is fixedly installed on the side of the rectangular snap sleeve (202) away from the simulated blade (2); the arc-shaped slider (206) slides and connects with the annular slide rail (105) along the annular groove (106).
2. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 1, characterized in that: A connecting cylinder (101) is fixedly installed at the middle of the upper end of the central column (1), and a first threaded groove (102) is opened on the outside of the connecting cylinder (101).
3. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 2, characterized in that: A circular connecting groove (103) is provided below the central column (1) corresponding to the connecting cylinder (101), and a second threaded groove (104) is provided inside the central column (1) located on the inner wall of the circular connecting groove (103).
4. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 1, characterized in that: Multiple sets of connecting holes (107) are provided around the annular slide rail (105) located on the upper and lower sides of the annular slide groove (106).
5. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 1, characterized in that: A pin sleeve (204) is vertically inserted through the middle of the rectangular snap-fit sleeve (202).
6. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 5, characterized in that: A retaining pin (205) is fitted inside the insert sleeve (204).
7. The resin simulated plant leaf structure that is easy to disassemble and clean according to claim 1, characterized in that: A connecting pin (207) is vertically inserted through the middle of the arc-shaped slider (206).