A wind-resistant auxiliary planting device for young phyllostachys bambusoides seedlings
By combining a windproof net and a limiting ring structure with a wind speed sensor and a stabilizing structure, the problem of insufficient protection for bamboo seedlings in strong winds is solved, achieving stable growth and efficient protection for the seedlings.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-17
- Publication Date
- 2026-03-24
AI Technical Summary
Existing wind-resistant planting equipment for bamboo seedlings cannot provide sufficient protection in strong winds. Restriction measures alone may not be effective in resisting wind force, causing seedling stems and leaves to break or fall over, increasing the risk of pests and diseases.
The system employs a combination of windproof netting and limiting rings. The windproof netting is fixed by a support frame, and the limiting rings automatically expand as the seedlings grow. The linkage structure adjusts the size of the wind-resistant area, and the wind speed sensor monitors the wind force in real time and activates the stabilizing structure to enhance protection. The protective belt prevents wind gaps from entering.
Effectively disperses and blocks external wind force, reduces the impact of wind pressure on seedlings, ensures healthy seedling growth, and improves survival rate and growth rate. The protective belt and windproof net work together to provide a stable growth environment.
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Figure CN120077899B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of planting, in particular to an auxiliary wind-resistant planting device for bamboo (Phyllostachys nidularis) seedlings. BACKGROUND
[0002] Bamboo (Phyllostachys nidularis) seedlings have high requirements for the growing environment, especially in the early stages, suitable temperature, humidity, and light conditions are crucial for their healthy development. However, in natural environments, wind is an influential factor that cannot be ignored, especially in mountainous areas or open areas, strong winds can adversely affect the growth of seedlings. Strong winds can easily cause the stems and leaves of bamboo seedlings to break or lodge, especially the tender parts are more susceptible to damage. This physical damage directly affects the normal growth of the seedlings and increases the risk of disease and pests.
[0003] The currently disclosed Chinese patent CN220422619U is an auxiliary wind-resistant planting frame for bamboo seedlings, which includes a height adjustment support fixing assembly, a mounting traction frame, a limiting auxiliary sheet, and a limiting protection belt. The mounting traction frame is fixedly arranged on the top of the height adjustment support fixing assembly. Both the height adjustment support fixing assembly and the mounting traction frame are provided with four groups. The limiting auxiliary sheet is provided with two groups, which are detachably mounted on the four groups of mounting traction frames. The limiting protection belt is detachably mounted on the limiting auxiliary sheet, and the limiting protection belt is arranged in pairs.
[0004] According to the above-mentioned patent, the height adjustment support fixing assembly is adapted to different specifications of bamboo seedlings. The mounting traction frame is used to fix and limit the limiting auxiliary sheet and assemble it. The limiting protection belt is adapted to different growth states and thicknesses of bamboo. The assembly of each part increases the stability, effectively solving the problem of insufficient stability of the auxiliary fixing structure of the existing technology for bamboo seedlings. However, the seedlings are fragile, and the limiting measures can only reduce the direct impact of the wind on the seedlings to a certain extent. However, in strong winds, limiting alone may not provide sufficient protection. Therefore, there is a need for an anti-wind auxiliary planting device that can stably resist wind. SUMMARY
[0005] In view of the problems existing in the prior art, an auxiliary wind-resistant planting device for bamboo (Phyllostachys nidularis) seedlings is provided. The windproof net effectively disperses and blocks external wind, reducing the wind pressure directly acting on the seedlings. As the seedlings continue to grow and gradually harden, the limiting ring automatically adapts to the growth needs of the seedlings, and fits and gradually expands with the seedlings, playing a supporting and guiding role, helping the seedlings to maintain the correct posture.
[0006] To address the problems of existing technologies, this invention provides a wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings, comprising a planting frame with a matrix of planting troughs. Each planting trough has a base fixed to the soil and a wind-resistant mechanism for planting seedlings on the base. The base has an opening for normal seedling growth. The wind-resistant mechanism includes a windproof net with light transmission and a support frame on the base for fixing the windproof net. Each support frame surrounds the seedling on the base, and each support frame has a windproof net. All the windproof nets together form a wind-resistant area surrounding the seedling. A limiting ring fitted onto the seedling within the wind-resistant area automatically adapts to the seedling's growth. A linkage structure connects the limiting ring to each support frame. The lower end of each support frame is rotatably mounted on the base. As the seedling grows, the limiting ring gradually expands, while the support frame gradually swings outward under the action of the linkage structure, allowing the wind-resistant area to automatically adjust its size as the seedling diameter increases.
[0007] Preferably, the support frame is provided with a sturdy structure to enhance stability when the windbreak net is subjected to strong winds, and the planting rack is provided with a wind speed sensor to monitor the wind force in real time. When the wind speed sensor senses that the wind force exceeds a preset value, the sturdy structure is in the open state, thereby enhancing the stability of the windbreak net.
[0008] Preferably, the stabilizing structure has a light-transmitting resistance net disposed on the outside of the windbreak net and an inflatable airbag disposed between the resistance net and the windbreak net. The upper and lower ends of the support frame are each provided with one of the inflatable airbags. When the inflatable airbag is inflated, the gap between the resistance net and the windbreak net is filled, so that the resistance net is in a supported state.
[0009] Preferably, the stabilizing structure has a pull rope connected to the windbreak net and a tensioning actuator for driving the pull rope. The upper and lower halves of the windbreak net are both connected to the pull rope. When the tensioning actuator drives the pull rope to stretch outward, the windbreak net is in a taut state.
[0010] Preferably, each windbreak net has an arc-shaped block on its inner side, and all the arc-shaped blocks together form the limiting ring. Each arc-shaped block and its corresponding support frame are connected by a linkage structure. The base is provided with a rubber ring for fixing all the arc-shaped blocks. When the seedlings grow and push the arc-shaped blocks outward, the rubber ring is in a compressed state.
[0011] Preferably, the inner side of the arc-shaped block has a flexible layer.
[0012] Preferably, the linkage structure has a connecting rod disposed between the support frame and the arc-shaped block. The support frame has a first hinge portion rotatably connected to one end of the connecting rod, and the arc-shaped block has a second hinge portion rotatably connected to the other end of the connecting rod.
[0013] Preferably, a protective strip is provided between every two adjacent support frames to prevent wind from entering through the gaps and interfering with the growth of the seedlings; the protective strip is an elastic structure.
[0014] Preferably, each support frame has an extension block extending outward from its lower end, and a locking block that can engage with the extension block is provided on the base at the position corresponding to each support frame. The locking block can slide on the base, and the base has a sliding groove for the locking block to slide. When the operator controls the locking block to engage with the extension block, the support frame is in an outward unfolded state, so that the seedlings can be easily planted in the wind-resistant mechanism.
[0015] Preferably, the base has a plurality of positioning rods extending vertically downward from its bottom for insertion into the soil.
[0016] The advantages of this application compared to the prior art are:
[0017] 1. This invention utilizes a windproof net with light-transmitting properties, which effectively disperses and blocks external wind force while reducing the wind pressure directly impacting the seedlings. This minimizes the impact of wind on the seedlings, preventing them from swaying or breaking due to wind.
[0018] As the seedling continues to grow and gradually hardens, the retaining ring automatically adapts to the seedling's growth needs, adhering to the seedling and gradually expanding. This not only ensures the seedling's free growth but also provides support and guidance, helping the seedling maintain the correct posture.
[0019] As the limiting ring gradually expands, it transmits force to the supporting frame through a linkage structure, causing it to swing outwards and continuously expand the wind-resistant area. This ensures that the wind-resistant area always meets the growth needs of the seedlings, ultimately creating a spacious and stable growing environment. This improves the survival rate and growth rate of the seedlings.
[0020] 2. This invention uses a wind speed sensor to monitor wind force in real time and automatically adjusts the stabilizing structure to maintain efficient operation under different wind conditions, ensuring the stability of the windproof net.
[0021] When a stabilizing structure is used to protect the windbreak net, the net can still effectively protect the seedlings under strong wind conditions, avoiding the possibility of damage to the net and thus improving the survival rate and the likelihood of healthy growth of the seedlings.
[0022] 3. This invention effectively prevents strong winds from entering through the gaps by installing protective strips between adjacent support frames, protecting seedlings from wind damage. As the support frames are repositioned, the wind-resistant area expands with the growth of the seedlings. The elastic structure of the protective strips ensures that the change in wind-resistant area is unaffected while preventing direct wind impact on the seedlings through the gaps.
[0023] The combined effect of windbreak netting and protective belts blocks external wind forces, creating favorable growing conditions for the seedlings. This ensures that the seedlings receive adequate protection while also being able to grow freely in a relatively stable environment. Attached Figure Description
[0024] Figure 1 This is a three-dimensional structural schematic diagram of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention.
[0025] Figure 2 This is the invention Figure 1 Enlarged diagram of point A.
[0026] Figure 3 This is a three-dimensional structural diagram of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings of the present invention in a contracted state.
[0027] Figure 4 This is a partial three-dimensional structural cross-sectional view of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings of the present invention in a contracted state.
[0028] Figure 5 This is a three-dimensional structural diagram of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention, in its unfolded state.
[0029] Figure 6 This is a partial three-dimensional structural cross-sectional view of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention, in its unfolded state.
[0030] Figure 7 This is a planar sectional view of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention, in its contracted state.
[0031] Figure 8 This is a planar sectional view of the wind-resistant mechanism of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention, in its unfolded state.
[0032] Figure 9 This is a partial three-dimensional structural cross-sectional view of the locking block and extension block of a wind-resistant auxiliary planting device for bamboo seedlings according to the present invention, in the locked state.
[0033] Figure 10 This is the invention Figure 7 An enlarged schematic diagram of the first embodiment of the stabilizing structure at point B.
[0034] Figure 11 This is the invention Figure 8 An enlarged schematic diagram of the second embodiment of the stabilizing structure at point C.
[0035] The diagram is labeled as follows: 1. Planting rack; 11. Seedling; 2. Base; 21. Locking block; 211. Slide groove; 22. Positioning rod; 3. Wind-resistant mechanism; 31. Windproof net; 32. Support frame; 321. Protective belt; 322. Extension block; 4. Limiting ring; 41. Arc-shaped block; 42. Rubber ring; 5. Linkage structure; 51. Connecting rod; 511. First hinge; 512. Second hinge; 6. Stabilizing structure; 61. Resistance net; 62. Inflatable airbag; 63. Pull rope. Detailed Implementation
[0036] To further understand the features, technical means, and specific objectives and functions achieved by the present invention, the present invention will be described in further detail below with reference to the accompanying drawings and specific embodiments.
[0037] See Figures 1-8 As shown, a wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings includes a planting frame 1. The planting frame 1 has planting troughs arranged in a matrix. Each planting trough is equipped with a base 2 fixed to the soil and a wind-resistant mechanism 3 set on the base 2 for planting seedlings 11. The base 2 has an opening for the normal growth of the seedlings 11. The wind-resistant mechanism 3 includes a windproof net 31 with light transmission properties and a support frame 32 set on the base 2 for fixing the windproof net 31. Each support frame 32 is arranged around the seedlings 11 on the base 2, and each support frame 32 has a [missing information - likely a type of support]. The windproof nets 31, together forming a wind-resistant area that surrounds the seedlings 11, are provided with limiting rings 4 that are fitted onto the seedlings 11 and can automatically adapt to the growth of the seedlings 11. Each limiting ring 4 is connected to a linkage structure 5 between itself and each support frame 32. The lower end of each support frame 32 is rotatably mounted on the base 2. When the seedlings 11 grow, the limiting rings 4 are in a state of gradual expansion, while the support frames 32 are in a state of gradual outward swinging under the action of the linkage structure 5, so that the wind-resistant area can automatically adjust its size as the diameter of the seedlings 11 increases.
[0038] When the seedling 11 is placed in the opening of the base 2, it is planted in the soil of the opening area, ensuring that the seedling 11 has enough space to grow. At this time, the windproof net 31 has been installed on the support frame 32, forming a windproof enclosure around the seedling 11. The limiting ring 4 surrounds the base of the seedling 11 to prevent it from shaking or breaking due to external wind.
[0039] During the seedling growth stage, the seedling 11 is relatively fragile. Therefore, the inner diameter of the limiting ring 4 is larger than the size of the seedling 11 to avoid restricting its growth. When the seedling 11 enters its rapid growth period, as the stem gradually thickens, the seedling 11 begins to come into contact with the limiting ring 4. At this time, the limiting ring 4 automatically adapts to the continuous growth of the seedling 11, gradually expanding as the diameter of the seedling 11 increases. This allows the limiting ring 4 to fit tightly against the seedling 11 without applying excessive pressure, thus ensuring the healthy growth of the seedling 11. As the seedling 11 continues to grow and gradually hardens, the limiting ring 4 not only provides support but also offers some guidance for its growth.
[0040] When the windbreak net 31 blocks the wind, because it is made of a material with good light transmission properties, i.e., a mesh structure, it can effectively block strong winds without affecting the seedlings 11's access to sunlight. This disperses the wind force and reduces the chance of it directly impacting the seedlings 11.
[0041] As seedling 11 continues to grow, the limiting ring 4 gradually expands. During this process, the linkage structure 5 transmits force to the support frame 32, causing it to gradually swing outward. As the support frame 32 swings outward, the entire wind-resistant area also expands, ensuring that the wind-resistant area always meets the growth needs of the seedling 11. As the seedling 11 grows, the wind-resistant area continues to expand, eventually forming a spacious and stable growing environment. This minimizes the impact of wind on the seedling 11.
[0042] See Figure 1 , Figure 7 and Figure 8 As shown, the support frame 32 is equipped with a stabilizing structure 6 to enhance the stability of the windproof net 31 when it is subjected to strong winds. The planting rack 1 is equipped with a wind speed sensor to monitor the wind force in real time. When the wind speed sensor senses that the wind force exceeds the preset value, the stabilizing structure 6 is in the open state, which enhances the stability of the windproof net 31.
[0043] The wind speed sensor is not shown in the figure.
[0044] When the wind speed sensor detects that the wind force exceeds a preset safety threshold, it transmits a signal to the controller, which then activates the stabilizing structure 6. This significantly enhances the stability of the windproof net 31, effectively blocking wind even in strong winds and preventing it from directly impacting the seedlings 11. This not only reduces the impact of wind on the seedlings 11 but also avoids the risk of the windproof net 31 being damaged by excessive wind.
[0045] The timely opening of the sturdy structure 6 ensures that the windbreak net 31 is always in optimal working condition, providing continuous and reliable protection for the seedlings 11.
[0046] SeeFigure 7 and Figure 10 As shown, the stabilizing structure 6 has a light-transmitting resistance net 61 disposed on the outside of the windproof net 31 and an inflatable airbag 62 disposed between the resistance net 61 and the windproof net 31. The upper and lower ends of the support frame 32 are each provided with an inflatable airbag 62. When the inflatable airbag 62 is inflated, the gap between the resistance net 61 and the windproof net 31 is filled, so that the resistance net 61 is in a supported state.
[0047] When the wind speed sensor detects that the wind force exceeds a preset value, the controller will activate the inflation device of the inflatable airbag 62. The inflation device is not shown in the figure. The inflatable airbags 62 at both the upper and lower ends of the support frame 32 are rapidly inflated.
[0048] As the inflatable airbag 62 inflates, it gradually fills the gap between the resistance net 61 and the windproof net 31. Once fully inflated, the resistance net 61 is supported. At this point, a stable and robust integrated structure is formed between the resistance net 61 and the windproof net 31.
[0049] Under strong wind conditions, the inflatable airbags 62 and the windbreak net 61 work together to enhance the stability of the wind resistance process. The windbreak net 61 not only provides an additional physical barrier but also works in conjunction with the windbreak net 31 to effectively resist the impact of strong winds on the seedlings 11. It also prevents damage to the windbreak net 31, thus strengthening the protective effect.
[0050] See Figure 8 and Figure 11 As shown, the stabilizing structure 6 has a pull rope 63 connected to the windproof net 31 and a tensioning driver for driving the pull rope 63. The upper and lower halves of the windproof net 31 are both connected to the pull rope 63. When the tensioning driver drives the pull rope 63 to stretch outward, the windproof net 31 is in a tensioned state.
[0051] The tensioning driver is not shown in the figure.
[0052] When the wind speed sensor detects that the wind force exceeds a preset value, the controller activates the tensioning driver. The tensioning driver drives the pull ropes 63 connected to the windproof net 31. By simultaneously pulling the pull ropes 63 on both the upper and lower halves of the windproof net 31, the windproof net 31 can be quickly tensioned in a short time, ensuring that the windproof net 31 is evenly stressed from top to bottom.
[0053] As the rope 63 is stretched, the windbreak net 31 gradually becomes taut. The taut windbreak net 31 can more effectively resist strong winds, reducing the impact of wind on the seedlings 11. The taut windbreak net 31 also reduces swaying and deformation caused by wind, ensuring the stability and reliability of its structure. This enhanced wind resistance ensures that the windbreak net 31 is always in optimal working condition, providing a more stable and safe growing environment for the seedlings 11.
[0054] See Figures 2-9 As shown, each windbreak net 31 has an arc-shaped block 41 on its inner side. All the arc-shaped blocks 41 together form the limiting ring 4. Each arc-shaped block 41 and the corresponding support frame 32 are connected by a linkage structure 5. The base 2 is provided with a rubber ring 42 for fixing all the arc-shaped blocks 41. When the seedlings 11 grow and push the arc-shaped blocks 41 outward, the rubber ring 42 is in a compressed state.
[0055] As the seedling 11 continues to grow, its volume gradually increases, and it begins to exert outward pressure on the arc-shaped block 41. The growth force of the seedling 11 gradually pushes the arc-shaped block 41 outward. Since there is a linkage structure 5 between the arc-shaped block 41 and the support frame 32, the force of the arc-shaped block 41 being pushed outward will be transmitted to the support frame 32 through the linkage structure 5.
[0056] When the arc-shaped block 41 is pushed outward by the seedling 11, the rubber ring 42 on the base 2 is compressed. The rubber ring 42 has good elasticity and cushioning properties, which can provide support for the arc-shaped block 41 during the growth of the seedling 11. This allows the arc-shaped block 41 to be cushioned during the outward pushing process, avoiding hard contact with the base 2, thus allowing the arc-shaped block 41 to automatically adapt to the growth of the seedling 11.
[0057] See Figures 7-9 As shown, the inner side of the arc-shaped block 41 has a flexible layer.
[0058] The presence of the flexible layer makes the arc-shaped block 41 gentler when in contact with the seedling 11, avoiding scratches or pressure that the hard material may cause to the seedling 11.
[0059] See Figure 4 and Figures 6-9 As shown, the linkage structure 5 has a connecting rod 51, which is disposed between the support frame 32 and the arc block 41. The support frame 32 has a first hinge portion 511 that is rotatably connected to one end of the connecting rod 51, and the arc block 41 has a second hinge portion 512 that is rotatably connected to the other end of the connecting rod 51.
[0060] When the seedling 11 grows and exerts an outward pushing force on the arc-shaped block 41, the arc-shaped block 41 transmits this force to the support frame 32 through the connecting rod 51.
[0061] Because one end of the connecting rod 51 is rotatably connected to the support frame 32 via the first hinge 511, and the other end is rotatably connected to the arc-shaped block 41 via the second hinge 512, the connecting rod 51 will rotate at the hinge point when the arc-shaped block 41 is subjected to force, allowing the arc-shaped block 41 to move freely within a certain range. As the windbreak net 31 is gradually expanded, the seedlings 11 are not excessively restricted during their growth, providing a wind-resistant area conducive to the growth of the seedlings 11.
[0062] See Figure 3 and Figure 4 As shown, a protective strip 321 is provided between every two adjacent support frames 32 to prevent wind from entering through the gap and interfering with the growth of the seedlings 11. The protective strip 321 is an elastic structure.
[0063] The protective strip 321 is set between every two adjacent support frames 32, which can effectively prevent wind from entering through the gap, avoid strong winds from blowing directly on the seedlings 11, and reduce the adverse effects of wind on the growth of the seedlings 11.
[0064] Because the protective strip 321 has an elastic structure, it can deform as the support frame 32 moves. This ensures that the protective strip 321 does not obstruct the growth of the seedlings 11 when the support frame 32 is repositioned, thus ensuring that the wind-resistant area is suitable for the growth of the seedlings 11.
[0065] By blocking external wind, the protective belt 321 creates a relatively stable microenvironment for the seedlings 11, ensuring that the seedlings 11 grow under relatively stable conditions and reducing the impact of external environmental changes on the seedlings 11.
[0066] See Figure 2 and Figures 7-9 As shown, each support frame 32 has an extension block 322 extending outward from its lower end. The base 2 has a locking block 21 that can engage with the extension block 322 at the position corresponding to each support frame 32. The locking block 21 can slide on the base 2. The base 2 has a sliding groove 211 for the locking block 21 to slide. When the operator controls the locking block 21 to engage with the extension block 322, the support frame 32 is in an outward unfolded state, so that the seedling 11 can be easily planted in the wind-resistant mechanism 3.
[0067] When the operator plants the seedling 11, the operator first manually unfolds all the support frames 32. At this time, the lower extension block 322 of the support frame 32 is in a free state and has not yet engaged with the locking block 21 on the base 2. After the support frame 32 is unfolded into place, the operator manually pushes each locking block 21 to make it slide along the slide groove 211 towards the corresponding extension block 322.
[0068] When the locking block 21 slides to the appropriate position, the operator engages it with the extension block 322. This ensures that the locking block 21 securely holds the extension block 322, guaranteeing that all support frames 32 remain in the deployed state. The deployed state provides sufficient space for the operator to plant the seedlings 11 within the wind-resistant mechanism 3.
[0069] After the seedlings 11 are planted, the operator releases all the locking blocks 21 from the corresponding extension blocks 322, allowing the support frame 32 to return to its original position. The return of the locking blocks 21 ensures that the support frame 32 can move freely, providing conditions for subsequent automatic adaptation to the growth of the seedlings 11.
[0070] See Figure 4 and Figures 6-9 As shown, the base 2 has multiple positioning rods 22 that extend vertically downwards from the bottom for insertion into the soil.
[0071] When installing the base 2, inserting the positioning rod 22 into the soil effectively prevents the entire wind-resistant mechanism 3 from shifting under wind or other external forces. Especially in strong winds or on unstable terrain, the positioning rod 22 ensures that the base 2 is firmly fixed to the ground, providing a stable growing environment for the seedlings 11.
[0072] By inserting the stakes deep into the soil, the base 2 forms a tight connection with the ground, enhancing overall stability. Even under harsh external conditions, the protective net remains stable and does not affect the protection of the seedlings 11.
[0073] This invention utilizes a windproof net 31 with light-transmitting properties to effectively disperse and block external wind forces, reducing the wind pressure directly acting on the seedlings 11 and minimizing the impact of wind on the seedlings 11, preventing them from swaying or breaking due to wind. As the seedlings 11 continue to grow and gradually harden, the limiting ring 4 automatically adapts to the growth needs of the seedlings 11, adhering to the seedlings 11 and gradually expanding. This not only ensures the free growth of the seedlings 11 but also provides support and guidance, helping the seedlings 11 maintain the correct posture.
[0074] In addition, the wind speed sensor monitors wind force in real time and automatically adjusts the stabilizing structure 6, maintaining efficient operation under different wind conditions and ensuring the stability of the windbreak net 31. This effectively protects the windbreak net 31 from damage, further improving the survival rate and the likelihood of healthy growth of the seedlings 11.
[0075] The above embodiments only illustrate one or more implementations of the present invention, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of protection of the present invention. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the appended claims.
Claims
1. A wind-resistant auxiliary planting device for bamboo seedlings, comprising a planting frame (1), wherein the planting frame (1) has a matrix of planting troughs, each planting trough having a base (2) fixed to the soil and a wind-resistant mechanism (3) provided on the base (2) for planting seedlings (11), wherein the base (2) has an opening for the normal growth of seedlings (11); Its features are, The wind-resistant mechanism (3) includes a windproof net (31) with light transmission properties and a support frame (32) set on the base (2) for fixing the windproof net (31). The base (2) is provided with a support frame (32) around the seedling (11), and each support frame (32) is provided with a windproof net (31). All the windproof nets (31) together form a wind-resistant area that surrounds the seedling (11). The wind-resistant area is provided with a limiting ring (4) that is fitted on the seedling (11) and can automatically adapt to the growth of the seedling (11). The limiting ring (4) and each support frame (32) are provided with a linkage structure (5). The lower end of the support frame (32) is rotatably mounted on the base (2). As the seedling (11) grows, the limiting ring (4) is in a state of gradual expansion, while the supporting frame (32) is in a state of gradual outward swing under the action of the linkage structure (5), so that the wind-resistant area can automatically adjust its size as the diameter of the seedling (11) increases.
2. The wind-resistant auxiliary planting equipment for *Phyllostachys edulis* seedlings according to claim 1, characterized in that, The support frame (32) is equipped with a stabilizing structure (6) to strengthen the stability of the windproof net (31) when it is subjected to strong winds. The planting rack (1) is equipped with a wind speed sensor to monitor the wind force in real time. When the wind speed sensor senses that the wind force exceeds the preset value, the stabilizing structure (6) is in the open state, which strengthens the stability of the windproof net (31).
3. The wind-resistant auxiliary planting equipment for *Phyllostachys edulis* seedlings according to claim 2, characterized in that, The stabilizing structure (6) has a light-transmitting resistance net (61) set on the outside of the windproof net (31) and an inflatable airbag (62) set between the resistance net (61) and the windproof net (31). The upper and lower ends of the supporting frame (32) are each provided with an inflatable airbag (62). When the inflatable airbag (62) is inflated, the gap between the resistance net (61) and the windproof net (31) is filled, so that the resistance net (61) is in a supported state.
4. The wind-resistant auxiliary planting equipment for *Phyllostachys edulis* seedlings according to claim 2, characterized in that, The stabilizing structure (6) has a pull rope (63) connected to the windproof net (31) and a tensioning driver for driving the pull rope (63). The upper and lower halves of the windproof net (31) are connected to the pull rope (63). When the tensioning driver drives the pull rope (63) to stretch outward, the windproof net (31) is in a taut state.
5. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 1, characterized in that, Each windbreak net (31) has an arc-shaped block (41) on its inner side. All the arc-shaped blocks (41) together form the limiting ring (4). Each arc-shaped block (41) and the corresponding support frame (32) are connected by a linkage structure (5). The base (2) is provided with a rubber ring (42) for all the arc-shaped blocks (41) to be fixedly connected. When the seedlings (11) grow and push the arc-shaped blocks (41) outward, the rubber ring (42) is in a compressed state.
6. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 5, characterized in that, The inner side of the arc-shaped block (41) has a flexible layer.
7. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 5, characterized in that, The linkage structure (5) has a connecting rod (51) which is disposed between the support frame (32) and the arc block (41). The support frame (32) has a first hinge (511) rotatably connected to one end of the connecting rod (51), and the arc block (41) has a second hinge (512) rotatably connected to the other end of the connecting rod (51).
8. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 1, characterized in that, Between each two adjacent support frames (32), there is a protective strip (321) to prevent wind from entering through the gap and interfering with the growth of the seedlings (11). The protective strip (321) is an elastic structure.
9. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 1, characterized in that, Each support frame (32) has an extension block (322) extending outward from its lower end. The base (2) has a locking block (21) at the position corresponding to each support frame (32) that can engage with the extension block (322). The locking block (21) can slide on the base (2). The base (2) has a sliding groove (211) for the locking block (21) to slide. When the operator controls the locking block (21) to engage with the extension block (322), the support frame (32) is in an outward-expanding state, so that the seedling (11) can be easily planted in the wind-resistant mechanism (3).
10. The wind-resistant auxiliary planting device for *Phyllostachys edulis* seedlings according to claim 1, characterized in that, The base (2) extends vertically downward at the bottom and is provided with multiple positioning rods (22) for insertion into the soil.
Citation Information
Patent Citations
Wind-resistant auxiliary planting frame for bamboo seedlings
CN220422619U
Safety device against wind of plant
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