A forestry planting, seedling raising, transplanting and transport box
By designing a deformable forestry seedling transport box, using the combination of telescopic frames and elastic ropes, the problems of poor breathability and inconvenience during seedling transportation are solved, and stable and efficient transportation in complex forests is achieved.
Patent Information
- Application Number
- CN202410660086.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-27
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2044-05-27
AI Technical Summary
When existing forestry seedling transport boxes transport seedlings in forest land, there are problems such as poor breathability, easy damage and inconvenient transportation, especially in uneven forest land.
A partition assembly including a box, an upper telescopic frame, a lower telescopic frame and a storage lattice is designed. Through the cooperation of the telescopic structure and elastic rope, the deformation and dislocation of the storage lattice are realized, the width of the box is adjusted, and the stability of the saplings and the transportation convenience are enhanced.
Without affecting the ventilation and ventilation of the saplings, by adjusting the overlap area and dislocation of the storage grid, the damage rate of the saplings is reduced, the stability and convenience during transportation are improved, and the complex terrain of the forest is adapted to the complex terrain of the forest.
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Figure CN118255046B_ABST
Abstract
Description
Technical Field
[0001] The invention belongs to the technical field of transport box equipment, in particular to a transport box for planting, seedling cultivation and transplanting used in forestry. Background Art
[0002] When managing forest land, forest rangers and other relevant management personnel usually conduct regular inspections of the forest land, and adjust the management and maintenance methods of the forest land in real time according to the actual conditions of the forest land. When trees in some areas of the forest land are cut down, seedlings die, or fires occur in the local area, resulting in dilution of the trees, it is usually necessary to replant the seedlings bred in the nursery into the forest land to maintain the density of the trees in the forest land. In the process of tree replanting, due to the production and breeding of trees and plants in the forest land, large transport vehicles cannot go deep into the forest land. Usually, after the transport vehicles transport the seedlings to the edge of the forest land, the staff manually transport the seedlings to the area to be replanted, and then carry out the replanting operation. When the seedlings are transported in batches manually, the seedlings are usually piled in transport boxes and bags. During transportation, the seedlings are piled up against each other, which not only makes the air permeability between the seedlings poor, but also squeezes each other, which easily causes the seedlings to be damaged or destroyed. Therefore, the loss rate of seedlings during transportation is relatively high.
[0003] In order to reduce the degree of damage during the bulk transportation of saplings, related technologies often separate and store saplings in transport boxes to avoid problems such as accumulation and blockage. For example, a related patent discloses a sapling transport box with the announcement number CN217599325U. In this solution, the saplings are separated and stored in the container by adjusting the intervals on the height of the transport container, thereby facilitating the bulk transportation of saplings. However, in actual application, forest rangers in the forest farms under our bureau reported that although the use of transport boxes to transport saplings enhances the protection of the saplings, there is a problem of inconvenience in use. This is because the separate storage of saplings increases the volume of the transport container. However, due to the large area of forest land, the saplings are transported in a separate container. The terrain in the middle is relatively flat, with numerous tree roots, shrubs, and herbaceous plants on the ground, and the gaps between plants vary in size. Therefore, the width of the passage between plants in the forest varies. When using this type of transport container to transport seedlings in batches, staff need to explore and find a passage suitable for the transport box in the forest. Moreover, due to the growth and reproduction of plants, the width of the passage of the same transport passage will change after a long period of time. Therefore, during actual transportation, it is necessary to constantly try and adjust the route according to the actual situation, which makes it difficult for the transport container to pass through the woods. In view of this, the present invention proposes a forestry planting, seedling cultivation, and transplanting transport box to solve the above technical problems.
[0004] The information disclosed in this background technology section is only intended to deepen the understanding of the overall background technology of the present invention and should not be regarded as an admission or any form of suggestion that the information constitutes the prior art known to those skilled in the art. Summary of the Invention
[0005] In order to make up for the deficiencies of the prior art and solve the above-mentioned technical problems, the present invention proposes a forestry planting, seedling transplanting and transport box.
[0006] The technical solution adopted by the present invention to solve the technical problem is as follows: the forestry planting, seedling cultivation, transplanting and transport box of the present invention comprises a box body and a partition assembly, wherein the partition assembly comprises an upper telescopic frame, a lower telescopic frame and a storage compartment;
[0007] The box body, the upper telescopic frame and the lower telescopic frame are all transverse telescopic structures, the lower telescopic frame is fixedly installed in the box body, the upper telescopic frame is slidably installed in the box body, and the upper telescopic frame is located above the lower telescopic frame. The upper telescopic frame and the lower telescopic frame are both provided with sliding grooves, the length direction of the sliding grooves is consistent with the telescopic direction of the upper telescopic frame and the lower telescopic frame, and a lifting plate is slidably installed in the box body, and the lifting plate extends between the upper telescopic frame and the lower telescopic frame;
[0008] The storage cells are provided with evenly distributed storage cavities, and the storage cells are divided into two groups, and the two groups of storage cells are spaced apart along the length direction of the sliding slot;
[0009] The upper telescopic frame and the lower telescopic frame are both equipped with connecting rods, the length direction of the connecting rods is perpendicular to the telescopic direction of the upper telescopic frame and the lower telescopic frame, and the connecting rods extend into the sliding groove. The two groups of storage compartments are respectively connected to the upper telescopic frame and the lower telescopic frame through the connecting rods.
[0010] Preferably, the bottom of the storage compartment is designed to be conical.
[0011] Preferably, a telescopic spring is fixedly installed in the box body, and a separation spring is fixedly installed at one end of the connecting rod located in the sliding groove, and the elastic force of the telescopic spring is greater than the combined force of the separation springs.
[0012] Preferably, an elastic sheet is fixedly mounted on the inner wall of the storage cavity, and connection holes are provided on the sides of the storage compartments close to each other. Elastic ropes are slidably mounted in the corresponding connection holes of two adjacent storage compartments, and both ends of the elastic ropes are connected to the elastic sheet.
[0013] Preferably, the total area of the elastic sheets in the storage cavity is larger than the opening area of the storage cavity.
[0014] Preferably, it also includes a base, the box is placed on the base, walking wheels are installed at the bottom of the base, telescopic rods are fixedly installed on both sides of the base, multiple telescopic rods are arranged in parallel, and multiple telescopic rods are divided into two groups, the two groups of telescopic rods are commonly fixedly installed with a splicing plate at one end away from the base, and a push rod is fixedly installed on one side of the base.
[0015] Preferably, a partition frame is fixedly installed on the box body, a combination groove is provided at the bottom of the box body, the partition frame matches the combination groove, a connecting plate is installed between the push rods, a telescopic groove is provided on the base, the connecting plate extends into the telescopic groove, and evenly distributed hooks are fixedly installed on the connecting plate, and the lifting plate is connected to the connecting plate through the hooks.
[0016] Preferably, a symmetrically designed limit groove is provided on the push rod, the connecting plate is a cross-shaped structure, the connecting plate extends into the limit groove, the limit groove is provided with evenly distributed slots, a limit rod is slidably installed in the slot, and the limit rod is located on the moving path of the connecting plate.
[0017] Preferably, a guide plate is fixedly mounted on the splicing plate, and the two guide plates are arranged in an eight-shaped shape, and the guide plates are used to guide the splicing plates to close.
[0018] The beneficial effects of the present invention are as follows:
[0019] 1. The forestry planting, seedling transplanting and transportation box described in the present invention has a partition assembly. On the one hand, when storing and taking out seedlings, the deformation and expansion of the box body and the partition assembly are utilized, so that the storage cavities opened on the multiple storage compartments are arranged horizontally, which is convenient for storing the seedlings in the storage cavities. In the transportation process, the relative movement of the two groups of storage compartments in the partition assembly in the vertical direction causes the two groups of storage compartments to be dislocated in the vertical direction and partially overlap in the horizontal direction, which not only reduces the horizontal width of the box body to facilitate transportation in the woodland, but also can flexibly adjust the size of the overlapping area of the storage compartments in the horizontal direction, thereby facilitating the adjustment of the seedling density. Without affecting the ventilation and air permeability of the seedlings, the mutual restriction between the seedlings is utilized to increase the stability of the seedlings during transportation, thereby further enhancing the convenience of seedling transportation.
[0020] 2. The forestry planting, seedling transplanting and transport box described in the present invention has a structure in which the elastic rope is subjected to tension due to the misalignment of the connecting holes on the two groups of storage compartments. The tension acts on the corresponding elastic sheets, causing the elastic sheets in the two groups of storage compartments to deflect toward the center of the storage cavity. When the elastic sheets move, they eventually block the opening of the storage cavity, thereby restricting the seedlings. In the subsequent transportation process, the restriction of the seedlings by the elastic sheets, combined with the mutual influence between the seedlings, can further reduce the effect of external forces on the seedlings and enhance the stability of the seedlings during transportation. BRIEF DESCRIPTION OF THE DRAWINGS
[0021] The present invention will be further described below with reference to the accompanying drawings.
[0022] Figure 1 This is a three-dimensional diagram of the assembly of the box body and the partition assembly of the present invention;
[0023] Figure 2 This is a perspective view of the assembly of the upper telescopic frame and the lower telescopic frame of the present invention;
[0024] Figure 3 It is a three-dimensional diagram of the box;
[0025] Figure 4 is a perspective view of the partition assembly;
[0026] Figure 5 It is a three-dimensional diagram of the storage grid;
[0027] Figure 6 is a cross-sectional view of a storage cell;
[0028] Figure 7 It is a three-dimensional diagram of the assembly of the multi-layer cabinet and the base;
[0029] Figure 8 This is a stereoscopic view of the assembly of the multi-layer cabinet and the base from another perspective;
[0030] Figure 9 It is a three-dimensional image of the base;
[0031] Figure 10 yes Figure 9 A partial enlarged view of point A in the middle;
[0032] In the figure: 1. Box body; 2. Upper telescopic frame; 21. Lower telescopic frame; 22. Storage compartment; 23. Sliding slot; 24. Lifting plate; 25. Storage cavity; 26. Connecting rod; 27. Telescopic spring; 28. Separating spring; 3. Elastic sheet; 31. Connecting hole; 32. Elastic rope; 4. Base; 41. Travel wheel; 42. Telescopic rod; 43. Splicing plate; 44. Push rod; 5. Separating frame; 51. Combination slot; 52. Connecting plate; 53. Telescopic slot; 54. Hook; 55. Limiting slot; 56. Slot; 57. Limiting rod; 58. Guide plate. DETAILED DESCRIPTION
[0033] In order to make the technical means, creative features, objectives and effects achieved by the present invention easier to understand, the present invention is further described below in conjunction with specific implementation methods.
[0034] like Figures 1 to 10 As shown, the forestry planting seedling transplanting and transport box of the present invention includes a box body 1 and a partition assembly, wherein the partition assembly is composed of an upper telescopic frame 2, a lower telescopic frame 21 and a storage compartment 22;
[0035] The box body 1, the upper telescopic frame 2 and the lower telescopic frame 21 are all transverse telescopic structures. The lower telescopic frame 21 is fixedly installed in the box body 1, and the upper telescopic frame 2 is slidably installed in the box body 1, and the upper telescopic frame 2 is located above the lower telescopic frame 21. The upper telescopic frame 2 and the lower telescopic frame 21 are both provided with a sliding groove 23. The length direction of the sliding groove 23 is consistent with the telescopic direction of the upper telescopic frame 2 and the lower telescopic frame 21. A lifting plate 24 is slidably installed in the box body 1, and the lifting plate 24 extends between the upper telescopic frame 2 and the lower telescopic frame 21;
[0036] The storage cells 22 are provided with evenly distributed storage cavities 25. The storage cells 22 are divided into two groups. The two groups of storage cells 22 are spaced apart along the length direction of the sliding slot 23.
[0037] The upper telescopic frame 2 and the lower telescopic frame 21 are both equipped with connecting rods 26. The length direction of the connecting rods 26 is perpendicular to the telescopic direction of the upper telescopic frame 2 and the lower telescopic frame 21. The connecting rods 26 extend into the sliding slots 23. The two groups of storage compartments 22 are connected to the upper telescopic frame 2 and the lower telescopic frame 21 respectively through the connecting rods 26.
[0038] When using a transport box to store saplings, in order to maintain the vitality of the saplings, the roots of the saplings are usually wrapped with soil, and then the saplings are separated and stored in the box 1. The box 1 is then transported to the area in the forest where the saplings are to be replanted. In this process, in order to enhance the convenience of transportation, the box 1 is provided with a deformation function. During transportation, the staff can adjust the width of the transport box 1 in real time according to the actual conditions of the transportation route in the forest, thereby facilitating the movement of the box 1 in the forest.
[0039] Specifically, when storing saplings, in the initial state, the partition assembly is located inside the box body 1, and the upper telescopic frame 2 is adjacent to the lower telescopic frame 21. At this time, the upper end surfaces of the two groups of storage grids 22 are flush, and the storage cavity 25 opened on the storage grid 22 is used to store saplings. After the saplings are gradually placed inside the storage cavity 25, the staff manually pulls up the lifting plate 24. Since the upper telescopic frame 2 is slidably installed in the box body 1, as the lifting plate 24 moves upward, the lifting plate 24 is located below the upper telescopic frame 2, forming a support for the upper telescopic frame 2, causing the upper telescopic frame 2 to be lifted. The upper telescopic frame 2 moves upward in the box body 1, and since the two groups of storage cells 22 are connected to the upper telescopic frame 2 and the lower telescopic frame 21 respectively through the connecting rod 26 and the sliding groove 23, when the upper telescopic frame 2 moves upward, the corresponding storage cells 22 are synchronously driven to move upward. As the movement distance increases, when the height difference between the two groups of storage cells 22 arranged at intervals gradually increases, the two groups of storage cells 22 gradually misalign. When the rising distance of the upper telescopic frame 2 is greater than the height of the storage cells 22, the two groups of storage cells 22 can be superimposed in the horizontal direction, and the external force is applied to the storage cells 22. The box body 1 is pushed, which can make the upper telescopic frame 2 and the lower telescopic frame 21 and the box body 1 shrink laterally. With the lateral shrinkage of the box body 1, not only the width of the box body 1 is reduced, but also the transportation convenience of the transport box is enhanced during transportation. Moreover, with the position change of the upper telescopic frame 2, the lower telescopic frame 21 and the two groups of storage grids 22, the two groups of storage grids 22 overlap each other in the horizontal direction, thereby increasing the density of the saplings stored in the box body 1. Then, the increase in the density of the saplings is used to restrict the saplings, which can reduce the density of the saplings during transportation. When the seedlings are subjected to external forces such as vibration, there is a probability of large-scale shaking. The horizontal width of the box body 1 is fixed by operations such as rope tying. When the seedlings are transported to the replanting area, the seedlings need to be taken out, and the staff manually releases the fixation of the box body 1 again. At this time, under the action of gravity, the upper telescopic frame 2 and the corresponding storage compartment 22 have a tendency to move downward, and return to the initial state again under the action of gravity. At this time, the two groups of storage compartments 22 are the same height and adjacent in the horizontal direction, which is convenient for the staff to take out the seedlings stored in the storage cavity 25.
[0040] The present invention provides a partition assembly. On the one hand, when storing and taking out saplings, the deformation and expansion of the box body 1 and the partition assembly are utilized, so that the storage cavities 25 opened on the multiple storage cells 22 are arranged horizontally, which is convenient for storing the saplings in the storage cavities 25. In the process of transportation, the relative movement of the two groups of storage cells 22 in the partition assembly in the vertical direction causes the two groups of storage cells 22 to be dislocated in the vertical direction and partially overlap in the horizontal direction. This not only reduces the horizontal width of the box body 1 for easy transportation in the woodland, but also can flexibly adjust the size of the overlapping area of the storage cells 22 in the horizontal direction, thereby facilitating the adjustment of the sapling density. Without affecting the ventilation and air permeability of the saplings, the mutual restriction between the saplings is utilized to increase the stability of the saplings during transportation, thereby further enhancing the convenience of sapling transportation.
[0041] The bottom of the storage compartment 22 is designed to be conical;
[0042] A telescopic spring 27 is fixedly installed in the box body 1, and a separation spring 28 is fixedly installed at one end of the connecting rod 26 located in the sliding groove 23. The elastic force of the telescopic spring 27 is greater than the combined force of the separation spring 28;
[0043] In actual design, in order to further enhance the convenience of use of the transport box, by setting the bottom of the storage compartment 22 to be conical, during the rising process of the storage compartment 22 corresponding to the upper telescopic frame 2, as the rising distance increases, its size gradually decreases. At this time, under the action of the separation spring 28 and the telescopic spring 27, the box body 1, the upper telescopic frame 2 and the lower telescopic frame 21 have a tendency to automatically shrink. Since the elastic force of the telescopic spring 27 is greater than the combined force of the separation spring 28, as the rising height of the upper telescopic frame 2 increases, the box body 1 and the upper telescopic frame 2 and the lower telescopic frame 21 inside it automatically adjust the lateral width, thereby making The width adjustment of the transport box is more flexible. At the same time, the lower end of the storage grid 22 is set to be conical. When the upper telescopic frame 2 and the corresponding storage grid 22 move downward, the conical shape can be used to facilitate the storage grid 22 to be inserted into the gap of the lower storage grid 22. In actual application, since the transverse width adjustment of the transport box body 1 is relatively convenient, during transportation, when the width of a local section of the route is small, the staff can manually pull the lifting plate 24 to quickly adjust the transverse width of the transport box, and after passing, release the lifting plate 24 to restore the transport box to its original state, further enhancing the convenience of use of the transport box.
[0044] It should be noted that during normal use of the transport box designed by the present invention, the top of the box body 1 is open, and the user can directly observe the condition of the saplings in the transport box. According to common knowledge, when the spacing between the saplings is adjusted, there is a risk of damage due to mutual squeezing of the saplings. Therefore, the user should be aware of observing the degree of squeezing between the saplings when adjusting the lateral width of the transport box. When the degree of adjustment of the transport box is too large and there is a risk of damage to the saplings, the user should be aware of avoiding the risk and changing the route. In addition, in order to enhance the survival rate of saplings and improve the condition of saplings during transportation, when using the transport box designed by the present invention, the user can fill the storage compartment 22 with water, nutrient solution, nutrient soil, etc. according to the type of saplings to be transported, demand, transportation time and other factors, so as to reduce the loss rate of saplings during transportation.
[0045] As a preferred embodiment of the present invention, an elastic sheet 3 is fixedly installed on the inner wall of the storage cavity 25, and connection holes 31 are opened on the side of the storage compartments 22 close to each other. Elastic ropes 32 are slidably installed in the corresponding connection holes 31 on the two adjacent storage compartments 22, and both ends of the elastic rope 32 are connected to the elastic sheet 3.
[0046] The total area of the elastic sheet 3 in the storage cavity 25 is larger than the opening area of the storage cavity 25;
[0047] In order to further enhance the ease of use of the transport box, in the initial state, under the force of gravity and manual cooperation, the two groups of storage compartments 22 are arranged at intervals. At this time, the vertical spacing between the two groups of storage compartments 22 is the smallest, the length of the elastic rope 32 is the smallest, and the elastic sheet 3 is tightly attached to the inner wall of the storage compartment 22 under its own elastic action. When the storage compartment 22 corresponding to the upper telescopic frame 2 rises, as the connecting holes 31 on the two groups of storage compartments 22 are misaligned, the elastic rope 32 is subjected to tension, and the tension acts on the corresponding elastic sheet 3, causing the elastic sheets 3 in the two groups of storage compartments 22 to deflect toward the center of the storage cavity 25. When the elastic sheet 3 moves, it eventually blocks the opening of the storage cavity 25, thereby achieving restriction on the saplings. In the subsequent transportation process, the restriction of the saplings by the elastic sheet 3, combined with the mutual influence between the saplings, can further reduce the effect of external forces on the saplings and enhance the stability of the saplings during transportation.
[0048] As a preferred embodiment of the present invention, it also includes a base 4, the box body 1 is placed on the base 4, and the bottom of the base 4 is equipped with walking wheels 41. Telescopic rods 42 are fixedly installed on both sides of the base 4, and multiple telescopic rods 42 are arranged in parallel, and multiple telescopic rods 42 are divided into two groups. The two groups of telescopic rods 42 are fixedly installed with a splicing plate 43 at one end away from the base 4, and a push rod 44 is fixedly installed on one side of the base 4. In order to enhance the movement ability of the transport box, by setting the base 4, after the saplings are placed, the box body 1 is placed on the base 4, and the bottom end of the box body 1 is supported by the telescopic rods 42 and the splicing plate 43 on both sides. During transportation, the staff manually pushes the push rod 44 and uses the walking wheels 41 installed at the bottom of the base 4 to further enhance the convenience of transportation.
[0049] As a preferred embodiment of the present invention, a partition frame 5 is fixedly installed on the box body 1, a combination groove 51 is opened at the bottom of the box body 1, the partition frame 5 matches the combination groove 51, a connecting plate 52 is installed between the push rods 44, a telescopic groove 53 is opened on the base 4, the connecting plate 52 extends into the telescopic groove 53, and evenly distributed hooks 54 are fixedly installed on the connecting plate 52, and the lifting plate 24 is connected to the connecting plate 52 through the hooks 54.
[0050] The push rod 44 is provided with a symmetrically designed limiting groove 55. The connecting plate 52 is a cross-shaped structure. The connecting plate 52 extends into the limiting groove 55. The limiting groove 55 is provided with evenly distributed slots 56. The limiting rods 57 are slidably installed in the slots 56. The limiting rods 57 are located on the moving path of the connecting plate 52.
[0051] When transporting saplings, in order to increase the transport capacity, the multi-layer boxes 1 are stacked in sequence. When stacking, the partition frame 5 fixedly installed on the lower box 1 is inserted into the combination groove 51 opened on the upper box 1, so that the multi-layer boxes 1 are connected and finally stacked on the base 4. At the same time, in order to facilitate real-time adjustment of the width of the box 1 during transportation, on the stacked box 1, the corresponding lifting plates 24 are respectively connected to the hooks 54 on the connecting plates 52, and the connecting plates 52 are manually pulled. When the connecting plates 52 rise, the multi-layer boxes 1 are simultaneously driven to retract. At this time, the staff inserts the limit rod 57 into the appropriate slot 56. When the connecting plates 52 are released, the limit rod 57 hinders the descent of the connecting plates 52, thereby limiting the expansion of the box 1, but does not limit the rise of the connecting plates 52. Therefore, during transportation, the staff can selectively shrink the width of the multi-layer box 1 according to actual conditions. When it reaches the replanting position, the limit rod 57 is pulled out to make the multi-layer box 1 fully unfolded.
[0052] As a preferred embodiment of the present invention, a guide plate 58 is fixedly mounted on the splicing plate 43, and the two guide plates 58 are arranged in an eight-shaped pattern. The guide plates 58 are used to guide the splicing plates 43 to close.
[0053] In actual application, a guide plate 58 is installed on the splicing plate 43, and the guide plate 58 is located at the end of the splicing plate 43 away from the push rod 44. When the base 4 is pushed to move, the eight-shaped structure formed by the guide plate 58 is located in the front section. On the one hand, the existence of the guide plate 58 can be compared with the width of the front channel to avoid direct contact between the box 1 and the base 4 and the front obstacles. On the other hand, after manually adjusting the width of the box 1, the distance between the two splicing plates 43 is greater than the actual width of the box 1. At this time, continue to push the push rod 44, and the guide plate 58 will interact with the obstacles on both sides. Under the conduction of the interaction force, the telescopic rod 42 will contract and the splicing plate 43 will close until the structure formed by the base 4, the telescopic rod 42 and the splicing plate 43 passes the obstacle. At this time, release the connecting plate 52, and under the action of gravity, the width of the box 1 is restored, and the splicing plate 43 and the guide plate 58 are simultaneously pushed to reset.
[0054] The basic principles, main features, and advantages of the present invention are shown and described above. Those skilled in the art should understand that the present invention is not limited to the foregoing embodiments. The foregoing embodiments and descriptions are merely illustrative of the principles of the present invention. Various changes and modifications may be made to the present invention without departing from the spirit and scope of the present invention. Such changes and modifications are intended to fall within the scope of the present invention. The scope of protection claimed in the present invention is defined by the appended claims and their equivalents.
Claims
1. A forestry planting, seedling raising, transplanting and transport box, comprising a box body (1) and a partition assembly, characterized in that: The partition assembly consists of an upper telescopic frame (2), a lower telescopic frame (21) and a storage compartment (22); The box body (1), the upper telescopic frame (2) and the lower telescopic frame (21) are all transverse telescopic structures. The lower telescopic frame (21) is fixedly installed in the box body (1), and the upper telescopic frame (2) is slidably installed in the box body (1), and the upper telescopic frame (2) is located above the lower telescopic frame (21). The upper telescopic frame (2) and the lower telescopic frame (21) are both provided with a sliding groove (23). The length direction of the sliding groove (23) is consistent with the telescopic direction of the upper telescopic frame (2) and the lower telescopic frame (21). A lifting plate (24) is slidably installed in the box body (1), and the lifting plate (24) extends between the upper telescopic frame (2) and the lower telescopic frame (21); The storage cells (22) are provided with evenly distributed storage cavities (25), and the storage cells (22) are divided into two groups, and the two groups of storage cells (22) are spaced apart along the length direction of the sliding groove (23); The upper telescopic frame (2) and the lower telescopic frame (21) are both equipped with connecting rods (26), the length direction of the connecting rods (26) being perpendicular to the telescopic direction of the upper telescopic frame (2) and the lower telescopic frame (21), and the connecting rods (26) are both extended into the sliding grooves (23), and the two groups of storage compartments (22) are respectively connected to the upper telescopic frame (2) and the lower telescopic frame (21) via the connecting rods (26); It also includes a base (4), the box (1) is placed on the base (4), a walking wheel (41) is installed at the bottom of the base (4), and telescopic rods (42) are fixedly installed on both sides of the base (4), a plurality of telescopic rods (42) are arranged in parallel, and the plurality of telescopic rods (42) are divided into two groups, and the ends of the two groups of telescopic rods (42) away from the base (4) are fixedly installed with a splicing plate (43), and a push rod (44) is fixedly installed on one side of the base (4); A partition frame (5) is fixedly mounted on the box body (1), a combination slot (51) is provided at the bottom of the box body (1), the partition frame (5) matches the combination slot (51), a connecting plate (52) is installed between the push rods (44), a telescopic slot (53) is provided on the base (4), the connecting plate (52) extends into the telescopic slot (53), evenly distributed hooks (54) are fixedly mounted on the connecting plate (52), and the lifting plate (24) is connected to the connecting plate (52) via the hooks (54).
2. A forestry planting, seedling raising, transplanting and transport box according to claim 1, characterized in that: The bottom of the storage compartment (22) is designed to be conical.
3. The forestry planting, seedling raising, transplanting and transport box according to claim 2, characterized in that: A telescopic spring (27) is fixedly installed in the box body (1), and a separation spring (28) is fixedly installed at one end of the connecting rod (26) located in the sliding groove (23), and the elastic force of the telescopic spring (27) is greater than the combined force of the separation spring (28).
4. The forestry planting, seedling raising, transplanting and transport box according to claim 3, characterized in that: An elastic sheet (3) is fixedly mounted on the inner wall of the storage cavity (25), and connecting holes (31) are provided on the sides of the storage compartments (22) adjacent to each other. Elastic ropes (32) are slidably mounted in the corresponding connecting holes (31) of two adjacent storage compartments (22), and both ends of the elastic ropes (32) are connected to the elastic sheet (3).
5. The forestry planting, seedling raising, transplanting and transport box according to claim 4, characterized in that: The total area of the elastic sheet (3) in the storage cavity (25) is larger than the opening area of the storage cavity (25).
6. The forestry planting, seedling raising, transplanting and transport box according to claim 5, characterized in that: A symmetrically designed limiting groove (55) is provided on the push rod (44), the connecting plate (52) is a cross-shaped structure, the connecting plate (52) extends into the limiting groove (55), and evenly distributed slots (56) are provided in the limiting groove (55). A limiting rod (57) is slidably installed in the slot (56), and the limiting rod (57) is located on the moving path of the connecting plate (52).
7. The forestry planting, seedling raising, transplanting and transport box according to claim 6, characterized in that: A guide plate (58) is fixedly mounted on the splicing plate (43), and the two guide plates (58) are arranged in an eight-shaped pattern. The guide plates (58) are used to guide the splicing plates (43) to close.
Citation Information
Patent Citations
Sapling transport case
CN217599325U
Collapsible transport frame suitable for container seedlings
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Germinating and growth tray assembly for plant seeds
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