Combined garden crop growth frame
By designing a combined garden crop growth rack with plugs and reinforcement mechanisms, the problem of unstable support vertical rods in the prior art is solved, and the stability improvement under strong winds or heavy plant load conditions is achieved.
Patent Information
- Application Number
- CN202421404642.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-19
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-06-19
AI Technical Summary
Existing garden crop growth racks are prone to dumping during strong winds or heavy plant loads, resulting in unstable support poles.
A combined garden crop growth frame is designed, using a plug and reinforcement mechanism, with a point-conical plug and a reinforcement sleeve and pushing block. The stability of the vertical rod is enhanced by fixing the reinforcement rod and reinforcement head in the reinforcement sleeve.
It effectively improves the stability of the supporting vertical poles on the garden ground, reduces the possibility of pouring, and ensures the stable use of crop growth racks under various weather conditions.
Smart Images

Figure CN222869505U_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of greening, and in particular to a combined garden crop growth rack. Background Art
[0002] A garden refers to an environment created in a certain area by using engineering technology and artistic means, through transforming the terrain, planting trees and flowers, constructing buildings and arranging garden paths. It is an artificial landscape that expresses nature by utilizing the environment. It consists of plants, mountains and rivers, and buildings. The plants include flower beds, flower beds, lawns, grass fields, rows of trees, hedges, tree groups, and scenic trees.
[0003] In order to allow some crops planted in gardens to grow in the designed direction or to allow the crops to grow into a specific plant wall, a vertical pole will be inserted next to the crops when they grow. Several horizontal poles are evenly distributed on the vertical pole, which serve as a growth frame for the crops to grow and climb.
[0004] When the vertical poles serving as growth racks are inserted into the ground, since the ground for crop growth is all soil, the ends of the vertical poles inserted into the ground are designed to be cone-shaped, and then the soil layer is used to squeeze the vertical poles to maintain their stability. The soil layer used for crop growth is generally loose, and the vertical poles are only fixed by the squeezing of the soil layer. When encountering strong winds or when the climbing plants are heavy, the vertical poles may fall over. Utility Model Content
[0005] The purpose of the present application is to solve the problem in the above-mentioned background technology that the soil layer used for crop growth is generally loose and only relies on the soil layer to squeeze and fix the vertical poles. When encountering strong winds or when the climbing plants are heavy, the vertical poles may fall over. The present application provides a combined garden crop growth rack.
[0006] In order to achieve the above-mentioned purpose, this application specifically adopts the following technical solutions:
[0007] A combined garden crop growth rack includes a supporting vertical rod, a plurality of evenly distributed supporting cross rods are fixed on the supporting vertical rod, a splicing mechanism is provided on the supporting cross rod, a plug is provided at one end of the supporting vertical rod, a reinforcement mechanism is provided between the plug and the supporting vertical rod, and the plug is in a pointed cone shape.
[0008] By adopting the above technical solution, the plugs on the supporting vertical rods are directed toward the ground, and then the plugs on the supporting vertical rods are inserted into the ground. After being inserted into the ground, the supporting vertical rods are squeezed by the reinforcement mechanism, and the reinforcement mechanism fixes the plugs inserted into the ground. Then, the splicing mechanism is used to fix the laterally adjacent supporting cross bars together to form a continuous growth rack, thereby improving the stability of the supporting vertical rods when inserted into the garden ground using the plugs, and reducing the possibility of the supporting vertical rods tipping over.
[0009] Furthermore, the reinforcement mechanism includes a reinforcement sleeve fixed on the plug, and a plurality of circumferentially distributed reinforcement rods are slidably connected to the reinforcement sleeve, and the reinforcement rods pass through the reinforcement sleeve. A reinforcement head is fixed at one end of the reinforcement rod away from the reinforcement sleeve, and the reinforcement head is in the shape of a pointed cone. A pushing block is fixed at one end of the support vertical rod close to the reinforcement sleeve, and the pushing block is in the shape of a cone. The end of the reinforcement rod away from the reinforcement head is slidably connected to the inclined surface of the pushing block, and a pushing assembly is provided between the reinforcement sleeve and the support vertical rod.
[0010] By adopting the above technical solution, the supporting vertical rod drives the pushing block, the pushing block squeezes the reinforcement rod, and the reinforcement rod drives the reinforcement head to be inserted horizontally from the reinforcement sleeve into the soil layer, thereby improving the stability of the plug inserted into the ground and reducing the possibility of the supporting vertical rod tipping over.
[0011] Furthermore, the pushing component includes a sliding groove 2 opened on the supporting vertical rod, a sliding groove 1 is opened at one end of the sliding groove 2 close to the reinforcement sleeve, the sliding groove 1 is connected to the sliding groove 2, a sliding block is fixed to the inner wall of the reinforcement sleeve, and the sliding block is located in the sliding groove 1.
[0012] By adopting the above technical solution, when the sliding block is in sliding groove one, the supporting vertical rod pushes the reinforcement sleeve, and then when the sliding block enters sliding groove two, the supporting vertical rod pushes the reinforcement rod in the reinforcement sleeve, so that it is convenient to push the insert into the soil layer and then let the pushing block squeeze the reinforcement rod.
[0013] Furthermore, one side of the reinforcement sleeve is threadedly connected to a conflicting bolt, and one end of the conflicting bolt passes through the reinforcement sleeve and conflicts with the supporting vertical rod.
[0014] By adopting the above technical solution, the interference bolt is rotated to disengage the interference with the supporting vertical rod, allowing the supporting vertical rod to rotate and slide in the reinforcement sleeve. The supporting vertical rod drives the pushing block to push the reinforcement rod, and then the interference bolt is re-tightened, thereby reducing the possibility of the reinforcement vertical rod driving the pushing block to separate from the reinforcement rod after the reinforcement rod is pushed out.
[0015] Furthermore, a stabilizing plate is fixed on the reinforcement sleeve, and the reinforcement sleeve passes through the stabilizing plate.
[0016] By adopting the above technical solution, when the plug is inserted into the ground, the plug drives the reinforcement sleeve, and the reinforcement sleeve drives the stabilizing plate to contact the ground, thereby improving the stability of the reinforcement sleeve driving the plug to be inserted into the ground.
[0017] Furthermore, the splicing mechanism includes a splicing block fixed on one end of the supporting crossbar, a splicing groove is formed at one end of the supporting crossbar away from the splicing block, the splicing block corresponds to the splicing groove, and a snap-on assembly is provided on the splicing block.
[0018] By adopting the above technical solution, the splicing blocks on two adjacent support cross bars are inserted into the splicing grooves and then fixed using the snap-fit assembly, thereby facilitating the fixation of adjacent support cross bars and improving the stability of the growth rack.
[0019] Furthermore, the clamping assembly includes a support block slidably connected to the splicing block, a clamping rod is fixed on the support block, the clamping rod passes through the splicing block and is slidably connected to the splicing block, a support spring is provided on the side of the support block away from the clamping rod, the splicing blocks and the support blocks at both ends of the support spring are fixedly connected, a clamping groove is provided on the inner wall of the splicing groove, and the clamping groove passes through the supporting cross bar.
[0020] By adopting the above technical solution, the splicing block drives the clamping rod to be inserted into the splicing groove, and then the clamping rod is inserted into the clamping groove in the splicing groove, thereby reducing the possibility of the splicing block falling off from the splicing groove.
[0021] Furthermore, a clamping inclined surface is provided on one end of the clamping rod away from the supporting block, and the direction of the clamping inclined surface is away from the supporting cross bar.
[0022] By adopting the above technical solution, when the engaging bevel contacts the edge of the splicing groove, the engaging rod squeezes the supporting spring under the action of the engaging bevel, thereby facilitating the contraction of the engaging rod and then entering the splicing groove.
[0023] In summary, the present application includes at least one of the following beneficial effects:
[0024] 1. In the present application, the plug on the supporting vertical rod is directed toward the ground. When the plug is inserted into the ground, the plug drives the reinforcing sleeve, and the reinforcing sleeve drives the stabilizing plate to contact the ground. Then the interference bolt is rotated to allow the interference bolt to disengage from the interference with the supporting vertical rod, allowing the supporting vertical rod to rotate and slide in the reinforcing sleeve. Then the sliding block in the reinforcing sleeve slides from sliding groove one into sliding groove two, and then pushes the supporting vertical rod. Then, the supporting vertical rod slides on the reinforcing sleeve, and the supporting vertical rod drives the pushing block to push the reinforcing rod. The reinforcing rod drives the reinforcing head to be inserted horizontally from the reinforcing sleeve into the soil layer. Then the interference bolt is re-tightened to allow the interference bolt to fix the reinforcing sleeve and the supporting vertical rod together, thereby achieving the purpose of improving the stability of the supporting vertical rod inserted into the garden ground using the plug and reducing the possibility of the supporting vertical rod tipping over.
[0025] 2. The present application allows the splicing block on one supporting cross bar to be inserted into the splicing groove on another supporting cross bar when multiple supporting vertical bars need to be fixed. When the splicing block is inserted into the splicing groove, the splicing groove squeezes the clamping rod, the clamping rod squeezes the supporting block, the supporting block squeezes the supporting spring, and the supporting spring is compressed. When the splicing block is completely inserted into the splicing groove, the clamping rod moves to the clamping groove position on the splicing groove, and then, under the push of the supporting spring, the supporting block drives the clamping rod to be inserted into the clamping groove, so that the splicing block is fixed in the splicing groove, completing the fixation of two adjacent supporting cross bars, thereby achieving the purpose of conveniently connecting adjacent growth racks and improving the overall stability. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 It is a schematic diagram of the first three-dimensional structure of the growth frame in this application;
[0027] Figure 2 It is a second three-dimensional structural diagram of the growth rack in this application;
[0028] Figure 3 This application Figure 2 A in the middle is an enlarged schematic diagram;
[0029] Figure 4 This application Figure 1 Enlarged schematic diagram of point B in the middle.
[0030] Description of reference numerals:
[0031] 1. Support vertical rod; 2. Support horizontal rod; 3. Plug; 4. Reinforcement mechanism; 41. Reinforcement sleeve; 42. Push block; 43. Reinforcement rod; 44. Reinforcement head; 45. Push assembly; 451. Sliding block; 452. Sliding groove 1; 453. Sliding groove 2; 454. Resistance bolt; 46. Stabilizing disk; 5. Splicing mechanism; 51. Splicing block; 52. Splicing groove; 53. Snap-on assembly; 531. Snap-on rod; 532. Support block; 533. Support spring; 534. Snap-on slope. DETAILED DESCRIPTION
[0032] The following is combined with Figure 1 —4 provides further details of this application.
[0033] The embodiment of the present application discloses a combined garden crop growth rack.
[0034] Reference Figure 1 、 Figure 2 and Figure 3 A combined garden crop growth rack includes a supporting vertical rod 1, a plurality of evenly distributed supporting cross rods 2 are fixed on the supporting vertical rod 1, a splicing mechanism 5 is provided on the supporting cross rod 2, a plug 3 is provided at one end of the supporting vertical rod 1, a reinforcement mechanism 4 is provided between the plug 3 and the supporting vertical rod 1, and the plug 3 is in a pointed cone shape.
[0035] When using the growing rack, first select a fixed position for the growing rack in the garden, then let the plug 3 on the supporting vertical rod 1 face the ground, and then insert the plug 3 on the supporting vertical rod 1 into the ground. After inserting into the ground, let the supporting vertical rod 1 squeeze the reinforcing mechanism 4, and the reinforcing mechanism 4 fixes the plug 3 inserted into the ground. Then, when installing a new vertical rod, use the splicing mechanism 5 to fix the laterally adjacent supporting cross bars 2 together to form a row of growing racks. When the supporting vertical rod 1 is inserted into the soil ground of the garden, the reinforcing mechanism 4 is used to further fix the plug 3, thereby improving the stability of the supporting vertical rod 1 inserted into the garden ground using the plug 3 and reducing the possibility of the supporting vertical rod 1 tipping over.
[0036] Reference Figure 1 、 Figure 2 and Figure 3 The reinforcement mechanism 4 includes a reinforcement sleeve 41 fixed on the plug 3, and a plurality of reinforcement rods 43 distributed in a circle are slidably connected to the reinforcement sleeve 41. The reinforcement rods 43 pass through the reinforcement sleeve 41, and a reinforcement head 44 is fixed to the end of the reinforcement rod 43 away from the reinforcement sleeve 41. The reinforcement head 44 is in a pointed cone shape. A pushing block 42 is fixed to the end of the support vertical rod 1 close to the reinforcement sleeve 41. The pushing block 42 is conical. The end of the reinforcement rod 43 away from the reinforcement head 44 is slidably connected to the inclined surface of the pushing block 42, and a pushing component 45 is arranged between the reinforcement sleeve 41 and the support vertical rod 1.
[0037] First, use the support vertical rod 1 to drive the pushing component 45, the pushing component 45 drives the reinforcement sleeve 41, and the reinforcement sleeve 41 drives the plug 3 to be inserted into the ground. Then use the pushing component 45 to let the support vertical rod 1 slide on the reinforcement sleeve 41, and the support vertical rod 1 drives the pushing block 42, the pushing block 42 squeezes the reinforcement rod 43, and the reinforcement rod 43 drives the reinforcement head 44 from the reinforcement sleeve 41 to be horizontally inserted into the soil layer. By using the pushing block 42 to push the reinforcement rod 43, the reinforcement rod 43 is inserted horizontally into the ground, thereby improving the stability of the plug 3 inserted into the ground and reducing the possibility of the support vertical rod 1 tipping over.
[0038] Reference Figure 2 and Figure 3 The pushing component 45 includes a sliding groove 2 453 opened on the supporting vertical rod 1, and a sliding groove 1 452 is opened at one end of the sliding groove 2 453 close to the reinforcement sleeve 41. The sliding groove 1 452 is connected to the sliding groove 2 453, and a sliding block 451 is fixed to the inner wall of the reinforcement sleeve 41, and the sliding block 451 is located in the sliding groove 1 452.
[0039] In addition, a conflicting bolt 454 is threadedly connected to one side of the reinforcing sleeve 41 , and one end of the conflicting bolt 454 passes through the reinforcing sleeve 41 and conflicts with the supporting vertical rod 1 .
[0040] Furthermore, a stabilizing plate 46 is fixed on the reinforcing sleeve 41 , and the reinforcing sleeve 41 passes through the stabilizing plate 46 .
[0041] When the plug 3 is inserted into the ground, the plug 3 drives the reinforcement sleeve 41, and the reinforcement sleeve 41 drives the stabilizing plate 46 to contact the ground, and then the interference bolt 454 is rotated to make the interference bolt 454 disengage from the interference with the support vertical rod 1, so that the support vertical rod 1 can rotate and slide in the reinforcement sleeve 41, and then the sliding block 451 in the reinforcement sleeve 41 slides from the sliding groove 1 452 into the sliding groove 2 453, and then pushes the support vertical rod 1, and then the support vertical rod 1 slides on the reinforcement sleeve 41, and the support vertical rod 1 with The push block 42 pushes the reinforcement rod 43, and then the interference bolt 454 is re-tightened to allow the interference bolt 454 to fix the reinforcement sleeve 41 and the support vertical rod 1 together. When the sliding block 451 is in the sliding groove 1 452, the support vertical rod 1 pushes the reinforcement sleeve 41, and then when the sliding block 451 enters the sliding groove 2 453, the support vertical rod 1 pushes the reinforcement rod 43 in the reinforcement sleeve 41, so that the reinforcement sleeve 41 can easily enter the soil layer with the reinforcement rod 43, and then the reinforcement can be extended.
[0042] Reference Figure 1 、 Figure 2 and Figure 4The splicing mechanism 5 includes a splicing block 51 fixed on one end of the supporting crossbar 2. A splicing groove 52 is provided at the end of the supporting crossbar 2 away from the splicing block 51. The splicing block 51 corresponds to the splicing groove 52, and a snap-on assembly 53 is provided on the splicing block 51.
[0043] In addition, the snap-in assembly 53 includes a support block 532 that is slidably connected to the splicing block 51, and a snap-in rod 531 is fixed on the support block 532. The snap-in rod 531 passes through the splicing block 51 and is slidably connected to the splicing block 51. A support spring 533 is provided on the side of the support block 532 away from the snap-in rod 531. The splicing blocks 51 and the support blocks 532 at both ends of the support spring 533 are fixedly connected, and a snap-in groove is provided on the inner wall of the splicing groove 52, which passes through the supporting cross bar 2.
[0044] Furthermore, a clamping inclined surface 534 is formed on one end of the clamping rod 531 away from the supporting block 532 , and the clamping inclined surface 534 is directed away from the supporting cross bar 2 .
[0045] When multiple support vertical rods 1 need to be fixed, the splicing block 51 on one support cross bar 2 is inserted into the splicing groove 52 on another support cross bar 2. When the splicing block 51 is inserted into the splicing groove 52, the splicing groove 52 squeezes the clamping inclined surface 534 on the clamping rod 531, and the clamping rod 531 squeezes the supporting block 532. The supporting block 532 squeezes the supporting spring 533. The support spring 533 is compressed, and when the splicing block 51 is completely entered into the splicing groove 52, the clamping rod 531 moves to the clamping groove position on the splicing groove 52. Then, under the push of the support spring 533, the support block 532 drives the clamping rod 531 to be inserted into the clamping groove, so that the splicing block 51 is fixed in the splicing groove 52, completing the fixation of two adjacent support cross bars 2. By using the splicing block 51 to be inserted into the splicing groove 52 and then using the clamping rod 531 for fixation, it is possible to conveniently connect adjacent growth racks together and improve the overall stability.
[0046] Working principle: When using the growing rack, first select a fixed position for the growing rack in the garden, then let the plug 3 on the supporting vertical rod 1 face the ground, and when the plug 3 is inserted into the ground, the plug 3 drives the reinforcing sleeve 41, and the reinforcing sleeve 41 drives the stabilizing plate 46 to contact the ground, and then rotate the interference bolt 454 to allow the interference bolt 454 to disengage from the interference with the supporting vertical rod 1, so that the supporting vertical rod 1 can rotate and slide in the reinforcing sleeve 41, and then the sliding block 451 in the reinforcing sleeve 41 slides from the sliding groove 1 452 to the sliding groove 2 453, and then pushes the supporting vertical rod 1, and then the supporting vertical rod 1 slides on the reinforcing sleeve 41, and the supporting vertical rod 1 drives the pushing block 42 to push the reinforcing rod 43, and the reinforcing rod 43 drives the reinforcing head 44 to be inserted horizontally from the reinforcing sleeve 41 into the soil layer, and then the interference bolt 454 is re-tightened. The contact bolt 454 allows the interference bolt 454 to fix the reinforcement sleeve 41 and the support vertical rod 1 together. When multiple support vertical rods 1 need to be fixed, the splicing block 51 on one support cross bar 2 is inserted into the splicing groove 52 on another support cross bar 2. When the splicing block 51 is inserted into the splicing groove 52, the splicing groove 52 squeezes the clamping rod 531, the clamping rod 531 squeezes the supporting block 532, and the supporting block 532 squeezes the supporting spring 533. The support spring 533 is compressed, and when the splicing block 51 is completely inserted into the splicing groove 52, the clamping rod 531 moves to the clamping groove position on the splicing groove 52, and then under the push of the support spring 533, the support block 532 drives the clamping rod 531 to be inserted into the clamping groove, so that the splicing block 51 is fixed in the splicing groove 52, completing the fixation of two adjacent support cross bars 2.
Claims
1. A modular garden crop growth rack, comprising a supporting vertical rod (1), characterized in that: A plurality of evenly distributed support cross bars (2) are fixed on the support vertical bar (1), and a splicing mechanism (5) is provided on the support cross bar (2). A plug (3) is provided at one end of the support vertical bar (1), and a reinforcement mechanism (4) is provided between the plug (3) and the support vertical bar (1), and the plug (3) is in the shape of a pointed cone; the reinforcement mechanism (4) comprises a reinforcement sleeve (41) fixed on the plug (3), and a plurality of circumferentially distributed reinforcement rods (43) are slidably connected to the reinforcement sleeve (41), and the reinforcement rods (43) penetrate the reinforcement sleeve (41), and a reinforcement head (44) is fixed at one end of the reinforcement rod (43) away from the reinforcement sleeve (41), and the reinforcement head (44) is in the shape of a pointed cone; a push block (42) is fixed at one end of the support vertical bar (1) close to the reinforcement sleeve (41), and the push block (42) is in the shape of a cone; the reinforcement rod (43) is away from the reinforcement head (4 4) is slidably connected to the inclined surface of the push block (42), and a push assembly (45) is provided between the reinforcement sleeve (41) and the support vertical rod (1); the push assembly (45) comprises a second slide groove (453) provided on the support vertical rod (1), and the second slide groove (453) is provided with a first slide groove (452) at one end close to the reinforcement sleeve (41), and the first slide groove (452) is connected to the second slide groove (453), and the reinforcement sleeve (41) is provided with a second slide groove (453). A sliding block (451) is fixed to the inner wall of the fixed sleeve (41), and the sliding block (451) is located in the first sliding groove (452); a conflicting bolt (454) is threadedly connected to one side of the reinforcing sleeve (41), and one end of the conflicting bolt (454) passes through the reinforcing sleeve (41) and contacts the supporting vertical rod (1); a stabilizing plate (46) is fixed to the reinforcing sleeve (41), and the reinforcing sleeve (41) passes through the stabilizing plate (46).
2. A combined garden crop growth rack according to claim 1, characterized in that: The splicing mechanism (5) comprises a splicing block (51) fixed on one end of a supporting crossbar (2); an end of the supporting crossbar (2) away from the splicing block (51) is provided with a splicing groove (52); the splicing block (51) corresponds to the splicing groove (52); and a clamping assembly (53) is provided on the splicing block (51).
3. A combined garden crop growth rack according to claim 2, characterized in that: The clamping assembly (53) comprises a support block (532) slidably connected to the splicing block (51); a clamping rod (531) is fixed to the support block (532); the clamping rod (531) penetrates the splicing block (51) and is slidably connected to the splicing block (51); a support spring (533) is provided on a side of the support block (532) away from the clamping rod (531); the splicing blocks (51) and the support block (532) at both ends of the support spring (533) are fixedly connected; and a clamping groove is provided on the inner wall of the splicing groove (52); the clamping groove penetrates the supporting cross bar (2).
4. The combined garden crop growth rack according to claim 3, characterized in that: A clamping inclined surface (534) is provided at one end of the clamping rod (531) away from the supporting block (532), and the direction of the clamping inclined surface (534) is away from the supporting cross bar (2).