An artificial flower convenient to fix
Patent Information
- Application Number
- CN202522058304.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-09-25
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-09-25
AI Technical Summary
[0003]现有的仿真花,通常采用螺栓紧固或一体式注塑或复杂卡扣结构,使用螺栓紧固方式时,用户需借助螺丝刀等工具逐一拧紧或拆卸螺栓,拆装步骤繁琐,耗时较长,且反复操作易导致螺纹磨损,影响连接稳定性,使用一体式注塑结构时,花朵与花杆无法分离,若花朵损坏或用户想更换不同样式的花朵,需整体更换仿真花,使用成本高且灵活性差,进而可能会降低使用效率,因此我们推出一种便于固定的仿真花
1.该便于固定的仿真花,通过利用拉板带动钢丝绳刀凸形插销的联动配合,实现花朵与副杆的快速固定与解除,安装时仅需向下滑动拉板即可解锁插销,插入插杆后松开拉板便完成固定,全程无需工具辅助,拆卸时重复滑动拉板操作即可取出花朵,依此有效缩短拆装时间,以便于用户可将其花朵更换成不同样进行使用,从而有效提升使用效率。
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Figure CN224722763U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of artificial flower technology, specifically to an artificial flower that is easy to fix. Background Technology
[0002] Artificial flowers refer to fake flowers made of materials such as silk, crepe paper, polyester, plastic, and crystal, as well as dried flowers made from fresh flowers. They are generally referred to as artificial flowers in the industry. As the name suggests, artificial flowers are made by imitating fresh flowers using materials such as cloth, gauze, silk, and plastic.
[0003] Existing artificial flowers typically use bolt fastening, one-piece injection molding, or complex snap-fit structures. When using bolt fastening, users need to use tools such as screwdrivers to tighten or loosen the bolts one by one, which is cumbersome, time-consuming, and repeated operation can easily lead to thread wear, affecting the stability of the connection. When using one-piece injection molding structures, the flower and the stem cannot be separated. If the flower is damaged or the user wants to change to a different style of flower, the entire artificial flower needs to be replaced, which is costly and lacks flexibility, and may reduce the efficiency of use. Therefore, we have launched an artificial flower that is easy to fix. Utility Model Content
[0004] To address the shortcomings of existing technologies, this invention provides an easy-to-fix artificial flower with the advantages of convenient and quick installation and adjustable flower stems, thus solving the problems mentioned in the background section.
[0005] This utility model provides the following technical solution: an easy-to-fix artificial flower, including a flower stem, a base fixedly installed at the bottom of the flower stem, a secondary rod slidably connected to the inner wall of the flower stem, a socket fixedly assembled at the top of the secondary rod, an insertion rod provided on the inner wall of the socket, a flower fixedly assembled at the top of the insertion rod, a first slot opened on the outer wall of the insertion rod, a second slot opened at the top of the socket, a connecting component provided on the inner wall of the second slot, an adjusting component provided in the inner cavity of the flower stem, a square groove opened on the inner wall of the base, and a fixing component provided in the inner cavity of the square groove.
[0006] As a preferred technical solution of this utility model: the connecting component includes a circular groove opened in the inner wall of the socket, the inner cavity of the circular groove is respectively provided with a first convex pin and a first spring, the outer wall of the socket is provided with a pulley, the outer wall of the first convex pin is provided with a steel wire rope, and the outer wall of the socket is slidably sleeved with a pull plate.
[0007] As a preferred technical solution of this utility model: the inner wall of the pull plate is slidably fitted against the outer wall of the socket. The circular groove, the first convex pin, the first spring, the pulley, and the steel wire rope are considered as a set of movable components, and there are four sets of such movable components, which are arranged in an array with the top of the socket as the center. One end of each of the four steel wire ropes is connected and fixed to the outer wall of the four first convex pins, and the other end is connected and fixed to the top of the pull plate at a 90-degree angle with the four pulleys as fulcrums. One end of the outer wall of each of the four first convex pins extends into the inner cavity of the four circular grooves, and the diameter is smaller than the opening diameter of the four circular grooves. The other end of the outer wall of each of the four first convex pins is fitted and slidably fitted against the inner wall of the four circular grooves, and the diameter is larger than the opening diameter of the four circular grooves. The four first springs are located on the side with the larger diameter of the four first convex pins, and one end overlaps with the outer wall of the four first convex pins, and the other end overlaps with the inner wall of the four circular grooves. The outer wall of each of the four first convex pins is adapted to the shape of the inner wall of the four first slots.
[0008] As a preferred technical solution of this utility model: the adjustment component includes a guide plate fixedly installed at the bottom of the auxiliary rod, a guide groove is provided on the inner wall of the flower rod, a knob is provided on the outer wall of the flower rod, a worm gear is fixedly sleeved on the inner wall of the knob, a rotating shaft is rotatably connected to the inner wall of the flower rod, a worm wheel is fixedly sleeved on the outer wall of the rotating shaft, and a threaded rod is fixedly installed on the top of the rotating shaft.
[0009] As a preferred technical solution of this utility model: the worm is located in the inner cavity of the flower rod, and the outer wall spiral is staggered and meshed with the outer edge teeth of the worm wheel; the inner wall of the guide plate is provided with threads, and the threads are staggered and meshed with the outer wall threads of the threaded rod; the outer wall of the guide plate is in close contact with the inner wall of the guide groove and slides.
[0010] As a preferred technical solution of this utility model: the fixing component includes a fixing shaft fixedly installed on the inner wall of a square groove, a heptagonal block rotatably connected to the outer wall of the fixing shaft, a second spring provided on the top of the heptagonal block, an arc groove opened on the outer wall of the heptagonal block, a second convex pin provided at the bottom of the base, and a suction cup fixedly assembled on the outer wall of the second convex pin.
[0011] As a preferred technical solution of this utility model: the fixed shaft, the heptagonal block, the second spring and the arc groove are regarded as a set of movable components, and there are two sets of movable components, which are respectively arranged opposite to each other. The bottom shape of the two arc grooves is inclined, and the inclined surface is slidably fitted to the top of the second convex pin. The distance between the two arc grooves forms a spherical shape, and the spherical shape is adapted to the top shape of the second convex pin. The two second springs are located in the inner cavity of the square groove, and one end is connected to the top of the second spring, and the other end is connected to the inner wall of the square groove.
[0012] Compared with the prior art, the present invention has the following beneficial effects: 1. This easy-to-fix artificial flower uses a pull plate to drive the convex pin of the steel wire rope knife, enabling quick fixing and unfixing of the flower and the auxiliary rod. During installation, simply slide the pull plate down to unlock the pin, insert the rod, and release the pull plate to complete the fixing. No tools are required throughout the process. To disassemble, simply slide the pull plate repeatedly to remove the flower, thus effectively shortening the assembly and disassembly time. This allows users to replace the flower with different ones, thereby effectively improving usage efficiency.
[0013] 2. This easy-to-fix artificial flower allows the auxiliary rod to move freely up and down along the inner wall of the flower stem by rotating the knob clockwise or counterclockwise, flexibly adjusting the overall height of the artificial flower. Whether it's a low height for desktop decoration, a medium height for bookshelf placement, or a high height for floor arrangement, it can be adapted simply by rotating the knob, eliminating the need to replace the flower stem or rely on external supports. This greatly expands the application scenarios of the artificial flower and enhances the product's practicality. Simultaneously, by using two sets of fixed shafts, a heptagonal block, and a second spring assembly arranged opposite each other, the arc-shaped groove forms a spherical gap that matches the second convex pin. During installation, pressing the accessory drives the heptagonal block to rotate in the opposite direction and compresses the spring. After the accessory is in place, the spring rebounds, pushing the heptagonal block to rotate relative to it. The arc-shaped groove tightly fits the outer wall of the second convex pin, forming a two-way clamping force, ensuring no loosening after fixing and improving the overall stability of the base. Furthermore, the suction cup and pointed cone, among other fixing accessories, can be quickly replaced simply by pressing or pulling the accessories to complete the assembly and disassembly. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention; Figure 2 This is a schematic diagram of the installation structure of this utility model; Figure 3 This is a schematic diagram of the connecting component structure of this utility model; Figure 4 This is a schematic cross-sectional view of the present invention. Figure 5 This utility model Figure 3 Enlarged structural diagram at point A in the middle; Figure 6 This utility model Figure 4 Enlarged structural diagram at point B; Figure 7 This utility model Figure 4 Enlarged structural diagram at point C.
[0015] In the diagram: 1. Flower stem; 2. Base; 3. Secondary stem; 4. Socket; 5. Insert rod; 6. Flower; 7. First slot; 8. Second slot; 9. Connecting assembly; 10. Adjusting assembly; 11. Square groove; 12. Fixing assembly; 901. Circular groove; 902. First convex pin; 903. First spring; 904. Pulley; 905. Steel wire rope; 906. Pull plate; 101. Guide plate; 102. Guide groove; 103. Rotary knob; 104. Rotating shaft; 105. Worm gear; 106. Threaded rod; 107. Worm; 121. Fixed shaft; 122. Heptagonal block; 123. Second spring; 124. Arc groove; 125. Second convex pin; 126. Suction cup. Detailed Implementation
[0016] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.
[0017] Please see Figure 1 - Figure 7 An easy-to-fix artificial flower includes a flower stem 1, a base 2 fixedly installed at the bottom of the flower stem 1, a secondary rod 3 slidably connected to the inner wall of the flower stem 1, a socket 4 fixedly assembled at the top of the secondary rod 3, an insertion rod 5 provided on the inner wall of the socket 4, a flower 6 fixedly assembled at the top of the insertion rod 5, a first slot 7 opened on the outer wall of the insertion rod 5, a second slot 8 opened at the top of the socket 4, a connecting component 9 provided on the inner wall of the second slot 8, an adjusting component 10 provided in the inner cavity of the flower stem 1, a square groove 11 opened on the inner wall of the base 2, and a fixing component 12 provided in the inner cavity of the square groove 11. In the above structure, when the insert rod 5 is inserted along the inner wall of the second slot 8, the connection component 9 is operated to fix the flower 6 and the auxiliary rod 3. When the auxiliary rod 3 and the flower 6 are separated and replaced, the connection component 9 is operated again to release the fixation of the flower 6. Then, the flower 6 is slid out along the direction of the second slot 8.
[0018] In a preferred embodiment: the connecting component 9 includes a circular groove 901 opened in the inner wall of the socket 4, the inner cavity of the circular groove 901 is respectively provided with a first convex pin 902 and a first spring 903, the outer wall of the socket 4 is provided with a pulley 904, the outer wall of the first convex pin 902 is provided with a wire rope 905, and the outer wall of the socket 4 is slidably sleeved with a pull plate 906. In a preferred embodiment: the inner wall of the pull plate 906 is slidably fitted against the outer wall of the socket 4. The circular groove 901, the first convex pin 902, the first spring 903, the pulley 904, and the steel wire rope 905 are considered as a set of movable components, and there are four sets of such movable components, arranged in an array with the top of the socket 4 as the center. One end of each of the four steel wire ropes 905 is connected and fixed to the outer wall of the four first convex pins 902, and the other end is connected and fixed to the top of the pull plate 906 at a 90-degree angle with the four pulleys 904 as fulcrums. The outer wall of one end of each of the four first convex pins 902 is... The inner cavity of the four circular grooves 901 extends out, and the diameter is smaller than the opening diameter of the four circular grooves 901. The outer wall of the other end of the four first convex pins 902 slides against the inner wall of the four circular grooves 901, and the diameter is larger than the opening diameter of the four circular grooves 901. The four first springs 903 are located on the side with the larger diameter of the four first convex pins 902, and one end overlaps with the outer wall of the four first convex pins 902, and the other end overlaps with the inner wall of the four circular grooves 901. The outer wall of the four first convex pins 902 is adapted to the shape of the inner wall of the four first slots 7. In the above structure, by sliding the pull plate 906 downwards along the outer wall of the socket 4, the pull plate 906 will simultaneously drive the four steel wire ropes 905 fixedly connected to its top to extend. The four steel wire ropes 905 will extend out of the inner cavity of the four circular grooves 901. Since the outer wall of the four steel wire ropes 905 and the outer wall of the four pulleys 904 are at a 90-degree angle, the four steel wire ropes 905 will not contact the outer wall of the socket 4 when extending out of the inner cavity of the four circular grooves 901, thereby reducing friction. At the same time, when the four steel wire ropes 905 extend out of the inner cavity of the circular grooves 901, the four steel wire ropes 905 will drive the four first convex pins 902 fixedly connected to the other end to slide along the inner wall of the four circular grooves 901. The sliding will simultaneously drive the four first springs 903 set on one side to compress. At this time, the end of the first convex pin 902 extending out of the inner cavity of the circular groove 901 will retract into the circular groove 901. The rod 5 is then slid into the inner cavity of the first slot 7 and inserted along the inner wall of the second slot 8. At this time, the outer walls of the four first convex pins 902 will correspond to the inner walls of the four corresponding first slots 7. By releasing the pull plate 906, the four first convex pins 902 will be reset and inserted into the inner cavity of the first slot 7 by the rebound of the four first springs 903. Since the diameter of one end of the first convex pin 902 is larger than the opening of the circular groove 901, the elastic potential of the first spring 903 stores energy to fix the first convex pin 902 to the opening of the circular groove 901. The end of the first convex pin 902 with a diameter smaller than the opening of the circular groove 901 extends out of the inner cavity of the circular groove 901 and inserts into the inner cavity of the first slot 7 to fix the rod 5. At this time, the four steel wire ropes 905 will return from the tense state to the initial state. Then, when it is necessary to release the rod 5 from the fixation, it can be achieved by the same operation.
[0019] In a preferred embodiment: the adjusting assembly 10 includes a guide plate 101 fixedly installed at the bottom of the auxiliary rod 3, a guide groove 102 is provided on the inner wall of the flower rod 1, a knob 103 is provided on the outer wall of the flower rod 1, a worm gear 107 is fixedly sleeved on the inner wall of the knob 103, a rotating shaft 104 is rotatably connected to the inner wall of the flower rod 1, a worm wheel 105 is fixedly sleeved on the outer wall of the rotating shaft 104, and a threaded rod 106 is fixedly installed on the top of the rotating shaft 104. In a preferred embodiment: the worm 107 is located in the inner cavity of the flower rod 1, and the outer wall spiral is staggered and meshed with the outer edge teeth of the worm wheel 105. The inner wall of the guide plate 101 is provided with threads, and the threads are staggered and meshed with the outer wall threads of the threaded rod 106. The outer wall of the guide plate 101 is in contact with the inner wall of the guide groove 102 and slides. In the above structure, by rotating the knob 103, the worm 107, which is fixedly sleeved with the inner wall, rotates accordingly. Since the outer spiral of the worm 107 meshes with the outer edge teeth of the worm wheel 105, the worm wheel 105 is driven to rotate by the rotating worm 107. This causes the rotating shaft 104, which is fixedly sleeved with the inner wall of the worm wheel 105, to rotate synchronously. The worm 107, which is fixed to the top of the rotating shaft 104, will rotate synchronously as well. Since the thread on the inner wall of the guide plate 101 meshes with the thread on the outer wall of the worm 107, the guide plate 101 will slide upward or downward along the inner wall of the guide groove 102 as the threaded rod 106 rotates, thereby adjusting the height of the auxiliary rod 3 to adapt to different scenarios.
[0020] In a preferred embodiment: the fixing component 12 includes a fixing shaft 121 fixedly installed on the inner wall of a square groove 11, a heptagonal block 122 rotatably connected to the outer wall of the fixing shaft 121, a second spring 123 provided on the top of the heptagonal block 122, an arc groove 124 opened on the outer wall of the heptagonal block 122, a second convex pin 125 provided on the bottom of the base 2, and a suction cup 126 fixedly mounted on the outer wall of the second convex pin 125. In a preferred embodiment: the fixed shaft 121, the heptagonal block 122, the second spring 123 and the arc groove 124 are regarded as a set of movable components, and there are two sets of movable components, which are respectively arranged opposite to each other. The bottom shape of the two arc grooves 124 is inclined, and the inclined surface is slidably fitted to the top of the second convex pin 125. The distance between the two arc grooves 124 forms a spherical shape, and the spherical shape is adapted to the top shape of the second convex pin 125. The two second springs 123 are located in the inner cavity of the square groove 11, and one end is connected to the top of the second spring 123, and the other end is connected to the inner wall of the square groove 11. In the above structure, by aligning the second convex pin 125 with the spherical shape formed by the gap between the two arc-shaped grooves 124, and then pressing the suction cup 126 upward, the second convex pin 125 will simultaneously contact the bottom inclined surface of the two arc-shaped grooves 124. This causes the two heptagonal blocks 122 to be squeezed and rotated in opposite directions around the outer wall of the fixed shaft 121 as they slide against the inclined surface of the second convex pin 125. Consequently, the two heptagonal blocks 122 will simultaneously compress the two second springs 123 at their tops during rotation, causing them to fully enter the two arc-shaped grooves at the top of the second convex pin 125. After the groove 124 forms a spherical shape, the pressure of its two heptagonal blocks 122 is reduced. Then, by using the two compressed second springs 123, it rebounds and rotates relative to each other around the outer wall of the fixed shaft 121, thereby locking and fixing the top of the second convex pin 125. This completes the installation and use of its suction cup 126. Next, when it is necessary to replace the tip of its suction cup 126, it is done by pulling down the suction cup 126 and then disengaging from the base 2 by the same operation described above. Then, the tip is installed and used by the same operation.
[0021] Working principle: First, the pull plate 906 slides downwards along the outer wall of the socket 4, causing the pull plate 906 to simultaneously drive the four steel wire ropes 905 fixedly connected to its top to extend. The four steel wire ropes 905 extend out of the inner cavities of the four circular grooves 901. Since the outer walls of the four steel wire ropes 905 and the outer walls of the four pulleys 904 are at a 90-degree angle, the four steel wire ropes 905 do not contact the outer wall of the socket 4 when extending out of the inner cavities of the four circular grooves 901, thus reducing friction. Simultaneously, as the four steel wire ropes 905 extend out of the inner cavities of the circular grooves 901, they drive the four first convex pins 902 fixedly connected to their other ends to slide along the inner walls of the four circular grooves 901. This sliding simultaneously compresses the four first springs 903 located on one side, causing the first convex pins 902 to extend out of the circular grooves. One end of the inner cavity of 901 will retract into the inner cavity of the circular groove 901, and then its insertion rod 5 will slide into the inner wall of the second slot 8. At this time, the outer walls of the four first convex pins 902 will correspond to the inner walls of the four corresponding first slots 7, so that by releasing the pull plate 906, the four first convex pins 902 will be reset and inserted into the inner cavity of the first slot 7 by the rebound of the four first springs 903. Therefore, since the diameter of one end of the first convex pin 902 is larger than the opening of the circular groove 901, the elastic potential of the first spring 903 stores energy to fix the first convex pin 902 to the opening of the circular groove 901, so that the end of the first convex pin 902 with a diameter smaller than the opening of the circular groove 901 extends out of the inner cavity of the circular groove 901 and inserts into the inner cavity of the first slot 7 to fix its insertion rod 5. At this time, the four steel wire ropes 905 will return from the tense state to the initial state. Then, align the second convex pin 125 with the spherical shape formed by the gap between the two arc-shaped grooves 124, and press the suction cup 126 upward so that the second convex pin 125 will simultaneously contact the bottom inclined surface of the two arc-shaped grooves 124. As a result, the two heptagonal blocks 122 are squeezed and rotated in opposite directions around the outer wall of the fixed shaft 121 under the sliding of the inclined surface and the top of the second convex pin 125. As a result, the two heptagonal blocks 122 will simultaneously compress the two second springs 123 at the top when they rotate. After the top of the second convex pin 125 is completely inserted into the spherical shape formed by the two arc-shaped grooves 124, the pressure of the two heptagonal blocks 122 will decrease. Then, by using the two compressed second springs 123 to rebound and rotate in opposite directions around the outer wall of the fixed shaft 121, the top of the second convex pin 125 will be locked and fixed, thus completing the installation and use of the suction cup 126. Secondly, by rotating the knob 103, the worm 107, which is fixedly sleeved with the inner wall, rotates accordingly. Since the outer spiral of the worm 107 meshes with the outer edge teeth of the worm wheel 105, the worm wheel 105 is driven to rotate by the rotating worm 107. This causes the rotating shaft 104, which is fixedly sleeved with the inner wall of the worm wheel 105, to rotate synchronously. The worm 107, which is fixed to the top of the rotating shaft 104, will rotate synchronously as well. Since the thread on the inner wall of the guide plate 101 meshes with the thread on the outer wall of the worm 107, the guide plate 101 will slide up or down along the inner wall of the guide groove 102 as the threaded rod 106 rotates, thereby adjusting the height of the auxiliary rod 3 to adapt to different scenarios.
[0022] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. An artificial flower that is easy to fix, comprising a flower stem (1), characterized in that: The bottom of the flower stem (1) is fixedly installed with a base (2), the inner wall of the flower stem (1) is slidably connected with a secondary rod (3), the top of the secondary rod (3) is fixedly fitted with a socket (4), the inner wall of the socket (4) is provided with a plug rod (5), the top of the plug rod (5) is fixedly fitted with a flower (6), the outer wall of the plug rod (5) is provided with a first slot (7), the top of the socket (4) is provided with a second slot (8), the inner wall of the second slot (8) is provided with a connecting component (9), the inner cavity of the flower stem (1) is provided with an adjusting component (10), the inner wall of the base (2) is provided with a square groove (11), and the inner cavity of the square groove (11) is provided with a fixing component (12).
2. The artificial flower that is easy to fix according to claim 1, characterized in that: The connecting component (9) includes a circular groove (901) opened in the inner wall of the socket (4). The inner cavity of the circular groove (901) is provided with a first convex pin (902) and a first spring (903). The outer wall of the socket (4) is provided with a pulley (904). The outer wall of the first convex pin (902) is provided with a wire rope (905). The outer wall of the socket (4) is slidably sleeved with a pull plate (906).
3. The artificial flower that is easy to fix according to claim 2, characterized in that: The inner wall of the pull plate (906) is slidably fitted against the outer wall of the socket (4). The circular groove (901), the first convex pin (902), the first spring (903), the pulley (904), and the steel wire rope (905) are considered as a set of movable components, and there are four sets of such movable components, which are arranged in an array with the top of the socket (4) as the center. One end of each of the four steel wire ropes (905) is connected and fixed to the outer wall of the four first convex pins (902), and the other end is connected and fixed to the top of the pull plate (906) with the four pulleys (904) as the fulcrum and rotated 90 degrees. The outer wall of one end of each of the four first convex pins (902) extends out to form four circular grooves. The inner cavity of the groove (901) has a diameter smaller than the opening diameter of the four circular grooves (901). The outer wall of the other end of the four first convex pins (902) slides against the inner wall of the four circular grooves (901) and has a diameter larger than the opening diameter of the four circular grooves (901). The four first springs (903) are located on the side with the larger diameter of the four first convex pins (902), with one end overlapping the outer wall of the four first convex pins (902) and the other end overlapping the inner wall of the four circular grooves (901). The outer wall of the four first convex pins (902) is adapted to the shape of the inner wall of the four first slots (7).
4. The artificial flower that is easy to fix according to claim 1, characterized in that: The adjustment assembly (10) includes a guide plate (101) fixedly installed at the bottom of the auxiliary rod (3), a guide groove (102) is provided on the inner wall of the flower rod (1), a knob (103) is provided on the outer wall of the flower rod (1), a worm gear (107) is fixedly sleeved on the inner wall of the knob (103), a rotating shaft (104) is rotatably connected to the inner wall of the flower rod (1), a worm wheel (105) is fixedly sleeved on the outer wall of the rotating shaft (104), and a threaded rod (106) is fixedly installed on the top of the rotating shaft (104).
5. The artificial flower that is easy to fix according to claim 4, characterized in that: The worm (107) is located in the inner cavity of the flower rod (1), and its outer wall spiral is interlocked with the outer edge teeth of the worm wheel (105). The inner wall of the guide plate (101) is provided with threads, and the threads are interlocked with the outer wall threads of the threaded rod (106). The outer wall of the guide plate (101) is in contact with the inner wall of the guide groove (102) and slides.
6. The artificial flower that is easy to fix according to claim 1, characterized in that: The fixing component (12) includes a fixing shaft (121) fixedly installed on the inner wall of a square groove (11). A heptagonal block (122) is rotatably connected to the outer wall of the fixing shaft (121). A second spring (123) is provided on the top of the heptagonal block (122). An arc groove (124) is opened on the outer wall of the heptagonal block (122). A second convex pin (125) is provided at the bottom of the base (2). A suction cup (126) is fixedly assembled on the outer wall of the second convex pin (125).
7. The artificial flower that is easy to fix according to claim 6, characterized in that: The fixed shaft (121), the heptagonal block (122), the second spring (123), and the arc groove (124) are considered as a set of movable components, and there are two sets of movable components, which are respectively arranged opposite to each other. The bottom shape of the two arc grooves (124) is inclined, and the inclined surface is in contact with the top of the second convex pin (125) and slides. The distance between the two arc grooves (124) forms a spherical shape, and the spherical shape is adapted to the top shape of the second convex pin (125). The two second springs (123) are located in the inner cavity of the square groove (11), and one end is connected to the top of the second spring (123), and the other end is connected to the inner wall of the square groove (11).