Nested flowerpot
By designing the stepped side walls and funnel-shaped cavity of the nested flower pot, the problems of insufficient breathability and difficulty in repotting of existing nested flower pots are solved, and better breathability and lower repotting resistance are achieved.
Patent Information
- Application Number
- CN202421748644.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-07-23
- Publication Date
- 2025-05-23
- Estimated Expiration
- 2034-07-23
AI Technical Summary
The existing nested flower pots have shortcomings in improving breathability and reducing the difficulty of repotting. The air permeability is not significantly improved and there is a great resistance during repotting, which can easily damage the root system.
A nested flower pot is designed, where the lower half of the pot and the lower half of the pot body shrinks inward, the side walls are stepped, and the pot mouth and multiple pot bodies are nested to form a funnel-shaped inner cavity, increasing the breathable area and reducing the serrated part of the inner wall, reducing the resistance during repotting.
It significantly improves the breathability of the flower pot, reduces the resistance during repotting and damage to the root system, and reduces the difficulty of repotting.
Smart Images

Figure CN222888292U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to a flower pot, in particular to a nested flower pot. Background Art
[0002] When using flower pots to plant flowers, some designs divide the pot walls into multiple layers and nest them. Each lower layer of pot wall is placed on the outside of the upper layer of pot wall, leaving a gap between the pot walls. The top of the lower pot wall is higher than the bottom of the upper pot wall and the water absorption effect of the planting material itself is used to prevent water from overflowing from the pot wall gap during watering. The pot wall gap can also be used for ventilation.
[0003] However, some of these flower pots adopt an integrated molding structure. In order to meet the requirements of injection molding, the flower pots are designed to be wider from top to bottom. Since the larger the contact area between the plant material and the air in the potted plant, the faster the evaporation rate of the water in the plant material, and the more breathable the flower pot can be, the total contact area between the plant material and the air in this flower pot with a small mouth and a large pot body is not significantly increased compared to the common flower pots with a large mouth and a small pot body of the same volume. Therefore, the improvement effect of this structure of the flower pot on air permeability is not obvious;
[0004] Some flower pots use a split structure, stacking pots of the same diameter together. The walls of this type of flower pot are often designed to be inverted cones. When the planting material is filled into the pot, it will be filled horizontally in the space near the wall of each inverted cone pot, making the planting material appear in the shape of an inverted pagoda in the pot. The roots of the plants will also enter these horizontally filled parts in the later stage. When planting flowers in flower pots, it is necessary to change the pots regularly. The planting material is filled horizontally in the pot wall and the pot diameter is the same from top to bottom. This will cause great resistance when taking the flowers out of the pots, and forcible removal can easily damage the roots. Utility Model Content
[0005] The utility model aims to provide a nested flower pot, which can improve the air permeability of the flower pot and reduce the difficulty of changing the pot.
[0006] In order to achieve the above-mentioned purpose, the nested flower pots of the utility model include: a pot mouth, a plurality of pot bodies arranged at the bottom of the pot mouth, and a pot bottom arranged at the bottom of the pot body; the pot mouth and the lower half of the pot body are contracted inwardly, so that the side walls of the pot mouth and the pot body are stepped; the bottom of the pot mouth is embedded in the top of the pot body, and the bottom of each upper layer of pot body is embedded in the top of the lower layer of pot body, and a gap is left between the pot mouth and the mutually nested pot walls of the plurality of pot bodies; the pot mouth and the pot body together constitute a funnel-shaped inner cavity that is larger at the top and smaller at the bottom; the pot mouth, the pot body, and the pot bottom are connected internally using a connecting structure.
[0007] After adopting such a structure, since the side walls of the flowerpot have multiple layers of gaps, and the internal space for placing planting materials in the flowerpot is a structure with a large mouth and a small body, the total contact area between the planting materials and the air in the pot is significantly increased compared with the common flowerpots with a large mouth and a small body of the same volume. Therefore, the flowerpots with this structure have a significant effect on improving the air permeability. Since the mouth of the pot and the lower half of the pot body shrink inward, the stepped side walls can make the inner wall of the flowerpot smoother after the nested combination, so that when the planting materials are filled into the pot, the lateral filling space is significantly reduced compared with the jagged inner wall formed after the inverted cone pot body is combined, and the resistance encountered when taking the flowers out of the flowerpot is significantly reduced, thereby reducing damage to the root system and reducing the difficulty of repotting.
[0008] The utility model is further described in detail below in conjunction with the accompanying drawings and specific implementation methods. BRIEF DESCRIPTION OF THE DRAWINGS
[0009] Figure 1 It is a three-dimensional schematic diagram of an embodiment of the nested flower pot of the utility model;
[0010] Figure 2 yes Figure 1 a front cutaway view of the nested plant pots shown;
[0011] Figure 3 yes Figure 1 A three-dimensional schematic diagram of the nested flower pots shown;
[0012] Figure 4 It is a three-dimensional schematic diagram of another embodiment of the nested flower pot of the utility model;
[0013] Figure 5 yes Figure 4 a front cutaway view of the nested plant pots shown;
[0014] Figure 6 yes Figure 4 A three-dimensional schematic diagram of the nested flower pots shown. DETAILED DESCRIPTION
[0015] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. The described embodiments are only possible technical implementations of the utility model, not all possible implementations. Those skilled in the art can completely combine the embodiments of the utility model to obtain other embodiments without creative work, and these embodiments are also within the scope of protection of the utility model.
[0016] See also Figures 1 to 3 , which is an implementation mode of the nested flower pots of the present utility model.
[0017] The nested flower pot comprises: a pot mouth 1, a plurality of pot bodies 2 arranged at the bottom of the pot mouth 1, and a pot bottom 3 arranged at the bottom of the pot bodies 2.
[0018] The ventilation area of the side wall of the flower pot can be increased by providing a plurality of pot bodies 2. The bottom 3 of the pot is provided with a water leakage hole.
[0019] The lower half of the basin mouth 1 and the basin body 2 shrink inward, so that the side walls of the basin mouth 1 and the basin body 2 are stepped; the bottom of the basin mouth 1 is embedded in the top of the basin body 2, and the bottom of each upper layer of the basin body 2 is embedded in the top of the lower layer of the basin body 2, and a gap is left between the basin mouth 1 and the mutually nested basin walls of multiple basin bodies 2; the basin mouth 1 and the basin body 2 together form a funnel-shaped inner cavity that is larger at the top and smaller at the bottom.
[0020] The purpose of embedding the upper layer of the side wall of the flower pot into the lower layer is to take advantage of the fact that the top of the lower pot wall is higher than the bottom of the upper pot wall and the water absorption effect of the planting material itself, so that water is not easy to overflow from the gap of the pot wall when watering, and the gap of the pot wall can also be used for ventilation. The stepped side wall can make the inner wall of the flower pot smoother after being nested and combined. Compared with the jagged inner wall formed by the combination of the inverted cone pot body, the resistance encountered when repotting and taking out the flowers is smaller, and the damage to the root system will also be less. The funnel-shaped inner cavity shape with a large upper part and a small lower part can further reduce the resistance encountered when taking out the flowers, and can also obtain stronger air permeability, because compared with the flower pots of the same volume, with gaps on the side walls, and with an inner cavity that is small at the top and large at the bottom or equal at the top and bottom, the flower pot has a larger pot mouth and a larger total air permeability area.
[0021] The pot mouth 1, pot body 2, and pot bottom 3 can be connected internally using a connecting structure. The connecting structure includes a plurality of connecting members 5 leaning against the inner side of the pot body 2, a clamping block 6 is arranged at the bottom of the connecting member 5, a pair of inclined side wings 7 are arranged on both sides of the connecting member 5, and a limit block 8 is arranged on the top of the side wings 7; a plurality of pairs of protrusions 10 facing the central axis of the flower pot and inclined to each other are arranged at the bottom of the pot mouth 1 and the pot body 2, the connecting member 5 passes through between each pair of protrusions 10, each pair of protrusions 10 is matched with the side wings 7, the protrusions 10 located on the pot mouth 1 are matched with the limit blocks 8, a plurality of snap platforms 11 are arranged at the bottom of the pot bottom 3, a snap hole 12 is arranged on the top of the snap platform 11, and the snap hole 12 is matched with the snap block 6.
[0022] The protrusions 10 arranged at the bottom of the pot mouth 1 and the pot body 2 use their paired mutually inclined structures that match the side wings 7 to limit the connector 5. On the one hand, the connector 5 can only slide up and down along the inner wall of the flower pot, and cooperate with the protrusions 10 on the top of the pot mouth 1 and the clamping holes 12 at the bottom of the flower pot to form a buckle structure to connect the pot mouth 1, the pot body 2, and the pot bottom 3 as a whole. Compared with the fully surrounded structure, the two half-enclosed structures can make the protrusions 10 occupy less space in the inner cavity of the flower pot, so as to reduce the resistance of the raised structure to the planting material when changing pots. Of course, the structure that matches the side wings 7 and the protrusions 10 is not limited to an inclined surface, but can also be a structure that can play a limiting effect, such as a stepped surface, a curved surface, etc. A buckle platform 11 is set at the bottom of the pot bottom 3, which can provide a corresponding accommodation space for the part of the connector 5 that passes through the clamping hole 12, so that when the flower pot is placed on any platform or tray 4, the bottom of the connector 5 is not easily accidentally touched and the buckle is unlocked.
[0023] A plurality of support plates 9 are arranged on the inner walls of the basin body 2 and the basin bottom 3 , and the support plates 9 are matched with the basin mouth 1 and the basin body 2 .
[0024] The support plate 9 can support the bottom of the basin mouth 1 and the basin body 2, and can limit the position from the side, so that the basin mouth 1, the basin body 2, and the basin bottom 3 maintain a certain distance and maintain a coaxial state.
[0025] The bottom of the basin bottom 3 may further include a tray 4 , and a plurality of ribs 13 are arranged inside the tray 4 , and the ribs 13 are adapted to the basin bottom 3 .
[0026] The ribs 13 can support the bottom of the pot bottom 3. When the pot bottom 3 is placed in the tray 4, the ribs 13 can be used to guide the pot bottom 3 to a position coaxial with the tray 4, so that the overall shape of the flower pot is more harmonious without much adjustment. Of course, the structure for guiding the pot bottom 3 is not limited to the slanted edge close to the pot wall, but can also be a slanted edge close to the center in conjunction with a convex structure at the bottom of the tray 4 or other structures that can achieve the same guiding effect.
[0027] The outer side of the side wall of the tray 4 may further include a flow guide 24 .
[0028] The flow guide head 24 can be connected to an external flow guide pipe to collect the waste liquid in a centralized manner.
[0029] The above embodiment is a splicing structure, and the next embodiment is a bolt connection structure.
[0030] See also Figures 4 to 6 , which is another embodiment of the nested flower pots of the present invention.
[0031] The nested flower pot comprises: a pot mouth 1, a plurality of pot bodies 2 arranged at the bottom of the pot mouth 1, and a pot bottom 3 arranged at the bottom of the pot bodies 2.
[0032] The nesting method, side wall shape and functional effect of the basin mouth 1 and the basin body 2 described in this embodiment are exactly the same as those of the previous embodiments, with the difference that: the connection structure includes a plurality of connecting bolts 14 leaning against the inner side of the basin body 2, a head 15 is arranged on the top of the connecting bolt 14, and a screw 16 is arranged on the bottom of the connecting bolt 14; an embedded limiting frame 17 is arranged inside the basin mouth 1, and an embedded supporting frame 18 is arranged inside each basin body 2, and a plurality of supporting plates 19 are arranged on the top of the supporting frame 18, and the supporting plates 19 are adapted to the basin mouth 1 and the basin body 2, and a plurality of limiting holes 20 are arranged on the limiting frame 17 and the supporting frame 18 near the central axis of the flowerpot, and the connecting bolt 14 passes through the limiting hole 20, and the limiting hole 20 located on the limiting frame 17 is adapted to the head 15, and a plurality of bottom holes 21 are arranged at the bottom of the basin bottom 3, and the screw 16 passes through the bottom hole 21 and is connected to the nut 22 at the bottom of the basin bottom 3.
[0033] The limiting frame 17 is embedded in the mouth of the basin 1 so that the mouth of the basin 1 can carry the limiting frame 17 and keep it coaxial with it. The supporting frame 18 is embedded in the basin body 2 so that the basin body 2 can carry the supporting frame 18 and keep it coaxial with it. The supporting plate 19 can support the bottom of the basin mouth 1 and the basin body 2, and can be limited from the side so that the basin mouth 1, the basin body 2, and the basin bottom 3 maintain a certain distance and maintain a coaxial state. The limiting holes 20 set near the center axis of the flowerpot on the limiting frame 17 and the supporting frame 18 limit the connecting bolts 14 so that the connecting bolts 14 can only slide up and down along the inner wall of the flowerpot, and cooperate with the limiting holes 20 on the limiting frame 17 at the top and the nuts 22 at the bottom of the flowerpot to form a bolt connection structure to connect the basin mouth 1, the basin body 2, and the basin bottom 3 as a whole. Of course, the limiting holes 20 are not limited to holes, but can also be grooves that play the same limiting role.
[0034] The bottom of the basin bottom 3 may further include a tray 4 . A plurality of supporting ribs 23 are provided at the bottom of the basin bottom 3 . The supporting ribs 23 are matched with the tray 4 .
[0035] The support ribs 23 can support the flower pot inside the tray 4. When the pot bottom 3 is placed in the tray 4, the edge of the support ribs 23 close to the pot wall can be used to guide the pot bottom 3 to a position coaxial with the tray 4, so that the overall shape of the flower pot is more harmonious without much adjustment. Of course, the structure of guiding the pot bottom 3 is not limited to the edge close to the pot wall, but can also be the edge close to the center and cooperate with the convex structure at the bottom of the tray 4 or other structures that can play the same guiding effect.
[0036] When in use, place the basin mouth 1, basin body 2, and basin bottom 3 from bottom to top. Figure 2 As shown in the figure, the flower pots are stacked in sequence, the protrusions 10 and the clamping holes 12 are aligned vertically, and the connecting piece 5 is inserted from top to bottom so that the clamping block 6 is clamped into the clamping hole 12. Alternatively, the pot mouth 1, the pot body 2, the pot bottom 3, the limit frame 17, and the support frame 18 are attached from bottom to top. Figure 5The flower pots are stacked in sequence as shown in the figure, and the limiting holes 20 and the bottom holes 21 are aligned vertically by rotating the flower pots. The connecting bolts 14 are inserted from top to bottom to connect the screw rods 16 and the nuts 22.
[0037] Of course, the connection structure of the nested flower pots can also use at least one of other structures such as splicing structure, bonding structure, welding structure, etc. Similarly, the cross-section of the flower pot is not limited to circular, but can also be a variety of other applicable shapes such as square.
[0038] The above are only some embodiments of the utility model, and do not limit the utility model in any form. Any simple modification, equivalent change and modification made to the above embodiments still fall within the scope of protection of the utility model technical solution.
Claims
1. A nested flower pot, comprising: A basin mouth (1), a plurality of basin bodies (2) arranged at the bottom of the basin mouth (1), and a basin bottom (3) arranged at the bottom of the basin bodies (2); The invention is characterized in that the lower half of the basin mouth (1) and the basin body (2) are contracted inwardly, so that the side walls of the basin mouth (1) and the basin body (2) are stepped; the bottom of the basin mouth (1) is embedded in the top of the basin body (2), and the bottom of each upper layer of the basin body (2) is embedded in the top of the lower layer of the basin body (2); a gap is left between the basin mouth (1) and the mutually nested basin walls of the plurality of basin bodies (2); the basin mouth (1) and the basin body (2) together form a funnel-shaped inner cavity that is larger at the top and smaller at the bottom; the basin mouth (1), the basin body (2) and the basin bottom (3) are internally connected using a connecting structure.
2. The nested flower pot according to claim 1, wherein: The connection structure comprises a plurality of connection members (5) leaning against the inner side of the pot body (2); a clamping block (6) is arranged at the bottom of the connection member (5); a pair of inclined side wings (7) are arranged on both sides of the connection member (5); and a limit block (8) is arranged on the top of the side wings (7); a plurality of pairs of protrusions (10) facing the central axis of the flower pot and inclined to each other are arranged at the pot mouth (1) and the bottom of the pot body (2); the connection member (5) passes through between each pair of protrusions (10); each pair of protrusions (10) is matched with the side wings (7); the protrusions (10) located on the pot mouth (1) are matched with the limit blocks (8); a plurality of clamping platforms (11) are arranged at the bottom of the pot bottom (3); a clamping hole (12) is arranged on the top of the clamping platform (11); and the clamping hole (12) is matched with the clamping block (6).
3. The nested flower pots according to claim 2, wherein: The connection structure comprises a plurality of support plates (9) arranged on the inner walls of the basin body (2) and the basin bottom (3); the support plates (9) are adapted to the basin mouth (1) and the basin body (2).
4. The nested flower pots according to claim 1, wherein: The bottom of the basin bottom (3) further comprises a tray (4), a plurality of ribs (13) are arranged inside the tray (4), and the ribs (13) are adapted to the basin bottom (3).
5. The nested flower pots according to claim 1, wherein: The connection structure comprises a plurality of connection bolts (14) leaning against the inner side of the basin body (2), a head (15) being arranged at the top of the connection bolts (14), and a screw rod (16) being arranged at the bottom of the connection bolts (14); an embedded limit frame (17) being arranged inside the basin mouth (1), and an embedded support frame (18) being arranged inside each basin body (2); a plurality of support plates (19) being arranged at the top of the support frame (18), the support plates (19) being matched with the basin mouth (1) and the basin body (2); a plurality of limit holes (20) being arranged on the limit frame (17) and the support frame (18) near the central axis of the flower pot, the connection bolts (14) passing through the limit holes (20), the limit holes (20) located on the limit frame (17) being matched with the head (15); a plurality of bottom holes (21) being arranged at the bottom of the basin bottom (3), and the screw rod (16) passing through the bottom holes (21) and being connected with nuts (22) at the bottom of the basin bottom (3).
6. The nested flower pots according to claim 5, wherein: The bottom of the basin bottom (3) further comprises a tray (4), and a plurality of supporting ribs (23) are arranged on the bottom of the basin bottom (3), wherein the supporting ribs (23) are adapted to the tray (4).
7. The nested flower pots according to claim 4 or 6, wherein: The outer side of the side wall of the tray (4) further comprises a flow guide head (24).
8. The nested flower pots according to claim 1, wherein: The connection structure includes at least one of a splicing structure, a bonding structure, and a welding structure.