Balcony vegetable growing basin
The design of a combined soil basin and water basin solves the problem of inconvenience in watering and fertilizing in existing vegetable planting pots, ensures sufficient supply of water and oxygen to the roots of vegetables, and improves the quality of vegetable cultivation and environmental protection.
Patent Information
- Application Number
- CN202422933520.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-10-03
- Estimated Expiration
- 2034-11-29
AI Technical Summary
The existing vegetable pot structure is not convenient for watering and fertilizing, which leads to slow nutrient absorption by vegetable roots and insufficient oxygen at the rhizomes, affecting the quality of vegetable cultivation.
It adopts a combined structure of soil basin and water basin, combines side watering with soil surface watering, uses air vents to provide oxygen to the roots, and air holes to drain excess water. Food-grade plastic materials are used to ensure healthy cultivation.
It improves the cultivation quality of vegetables, ensures that the roots get sufficient water and oxygen, reduces the risk of damage, has low production costs, and is suitable for promotion and use.
Smart Images

Figure CN223402912U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of vegetable planting vessels, in particular to a balcony vegetable planting basin. Background Art
[0002] A vegetable pot is a container used to grow vegetables, providing a convenient way for city dwellers or those with limited space. Pots are typically plastic, ceramic, or wooden, and come in a variety of shapes, including square, round, and rectangular. Generally speaking, a pot with a depth of approximately 20-30 cm is sufficient for growing leafy vegetables, such as pakchoy and mustard greens.
[0003] Most existing vegetable pots on the market are one-piece structures, making watering and fertilizing inconvenient and prone to damage. Once the nutrient soil is placed in the pot, glue and fertilizer can only penetrate downward from the top surface of the soil, leaving the roots at the bottom. This results in slower nutrient absorption by the roots and stems, increasing the time it takes to grow the vegetables. Furthermore, the roots and stems of vegetables remain deep in the soil for extended periods, receiving less oxygen, which affects the quality of the vegetables. Therefore, to address these issues, a balcony vegetable pot has been proposed. Utility Model Content
[0004] The purpose of the utility model is to address the defects and shortcomings of the existing technology and provide a balcony vegetable planting pot, which is convenient for glue fertilization in vegetable planting and is made of food-grade plastic material to ensure the healthy cultivation of vegetables. Watering can be done from the side of the liquid container in conjunction with watering the soil surface to provide sufficient moisture for the soil and vegetable roots and stems, and the amount of water in the liquid container can be controlled. At the same time, the air permeable groove formed between the soil container and the liquid container can provide sufficient oxygen for the vegetable roots and stems, thereby greatly improving the quality of vegetable cultivation and being able to cultivate healthy and high-quality vegetables.
[0005] To achieve the above-mentioned purpose, the utility model adopts the following technical scheme: it comprises a soil holding basin 1, a water receiving basin 2, an outward convex water receiving port 3, an inward concave water receiving port 4, a mounting hole 5, a first boss 6, a second boss 7, an air groove 8, a vertical through hole 9, a transverse hole 11, a vertical hole 12, a recessed portion 13, and a fixing bolt 14; the water receiving basin 2 is installed below the soil holding basin 1, and a mounting hole 5 is provided at each of the four corners of the soil holding basin 1, and a fixing bolt 14 is provided at each of the four corners of the water receiving basin 2 corresponding to the position of the mounting hole 5, and the fixing bolt 14 is installed in a matching size with the mounting hole 5; the left and right sides of the soil holding basin 1 are provided with inward concave water receiving ports 4, and the inward concave water receiving ports 4 corresponding to the position of the inward concave water receiving ports 4 are provided. The water basin 2 is provided with an outward convex water inlet 3 on each side, and the outward convex water inlet 3 and the inward sunken water inlet 4 correspond to form a complete water inlet; two groups of first bosses 6 are provided at the bottom of the soil basin 1, three first bosses 6 form a group and correspond to each other on the left and right positions, and second bosses 7 are provided at intervals between the three first bosses 6 on the same side, and air grooves 8 are provided at intervals between the first bosses 6 on both sides; each first boss 6 is provided with a plurality of vertical through holes 9 that pass through the edge of the air groove 8 and are evenly distributed, the air groove 8 is provided with a plurality of evenly distributed horizontal holes 11, and the second boss 7 is provided with a plurality of evenly distributed vertical holes 12; a recessed portion 13 is provided on the surface of both sides of the soil basin 1 above the sunken water inlet 4.
[0006] Furthermore, the sunken water inlet 4 on the soil receiving basin 1 and the convex water inlet 3 on the water receiving basin 2 are both integrally formed semicircular structures.
[0007] Furthermore, the downward protrusion depth of the first boss 6 is greater than the downward protrusion depth of the second boss 7 , and the air groove 8 is located at the uppermost part of the soil holding basin 1 .
[0008] Furthermore, the upper edge of the soil holding basin 1 is a protruding edge 101 .
[0009] Furthermore, the mounting hole 5 is an integrally formed structure on the soil holding basin 1 , and an integrally formed reinforcing rib 501 is provided on the outer side of the mounting hole 5 .
[0010] Furthermore, the recessed portion 13 is provided with a plurality of evenly distributed air holes 1301 .
[0011] The working principle of the present invention: a combined structure is adopted to fix the soil holding basin 1 and the water receiving basin 2 through four mounting holes 5 and fixing bolts 14, and the six first bosses 6 at the bottom of the soil holding basin 1 are deeply inserted into the water receiving basin 2, and the second boss 7 is suspended and does not contact the water in the water receiving basin, and an air groove 8 is separated in the middle. The first boss 6 contacts the water to ensure sufficient moisture, and the second boss 7 does not contact the water, and together with the air groove 8, provides sufficient oxygen for the vegetables; the recessed portion 13 on the side of the soil holding basin 1 is provided with a plurality of evenly distributed air holes 1301 for ventilation of the soil holding basin 1. When there is too much water inside the soil holding basin 1, it can flow out through the air holes. Since the recessed design of the recessed portion 13 has a guiding effect, when the excess water flows out, it will flow to the water inlet and flow into the water receiving basin 2 from the outer convex water inlet 3. The water in the soil will not flow out of the basin, which is clean and environmentally friendly.
[0012] After adopting the above technical scheme, the beneficial effects of the utility model are as follows: it adopts a combined structure of a soil container and a liquid container, which is convenient for the glue fertilization work of vegetable planting, and is made of food-grade plastic material to ensure the healthy cultivation of vegetables. Watering can be carried out through the side of the liquid container in combination with watering the soil surface to provide sufficient moisture for the soil and vegetable roots and stems, and the amount of water in the liquid container can be controlled. At the same time, the air permeable groove formed between the soil container and the liquid container can provide sufficient oxygen for the vegetable roots and stems. When the moisture in the soil overflows, it can be guided from the bottom and the side to flow into the liquid container to avoid flowing out of the pot. It is environmentally friendly and convenient, greatly improves the quality of vegetable cultivation, and can cultivate healthy and high-quality vegetables. This structure has low production cost, is not easy to damage, has high practicality, and is suitable for promotion and use. BRIEF DESCRIPTION OF THE DRAWINGS
[0013] In order to more clearly illustrate the embodiments of the present invention or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.
[0014] Figure 1 It is a structural diagram of the utility model;
[0015] Figure 2 It corresponds to Figure 1 A top view of
[0016] Figure 3 It corresponds to Figure 1 Left view of;
[0017] Figure 4 This is a schematic diagram of the bottom structure of the soil holding basin 1 in the present invention;
[0018] Figure 5This is a top view of the water receiving basin 2 in the present utility model;
[0019] Figure 6 It is a schematic diagram of the disassembly structure of the utility model.
[0020] Explanation of the reference numerals: soil holding basin 1, water receiving basin 2, convex water receiving port 3, recessed water receiving port 4, mounting hole 5, first boss 6, second boss 7, air groove 8, vertical through hole 9, transverse hole 11, vertical hole 12, recessed portion 13, fixing bolt 14, protruding edge 101, reinforcing rib 501, air vent 1301. DETAILED DESCRIPTION
[0021] See Figure 1-6 As shown, the technical solution adopted in this specific embodiment is: it includes a soil holding basin 1, a water receiving basin 2, an outer convex water receiving port 3, an inner recessed water receiving port 4, a mounting hole 5, a first boss 6, a second boss 7, an air groove 8, a vertical through hole 9, a transverse hole 11, a vertical hole 12, a recessed portion 13, a fixing bolt 14, a protruding edge 101, a reinforcing rib 501, and an air vent 1301; the water receiving basin 2 is installed below the soil holding basin 1, and a mounting hole 5 is provided at each of the four corners of the soil holding basin 1, and a fixing bolt 14 is provided at each of the four corners of the water receiving basin 2 corresponding to the mounting hole 5. The fixing bolt 14 is matched with the mounting hole 5 in size for installation; the left and right sides of the soil holding basin 1 are provided with an inner recessed water receiving port 4, corresponding to the A convex water inlet 3 is provided on each side of the water receiving basin 2 at the position of the sunken water inlet 4, and the convex water inlet 3 and the sunken water inlet 4 correspond to form a complete water inlet; two groups of first bosses 6 are provided at the bottom of the soil holding basin 1, three first bosses 6 form a group and correspond to each other on the left and right positions, and a second boss 7 is provided at the intervals between the three first bosses 6 on the same side, and an air groove 8 is provided at the intervals between the first bosses 6 on both sides; each first boss 6 is provided with a plurality of vertical through holes 9 that pass through the edge of the air groove 8 and are evenly distributed, the air groove 8 is provided with a plurality of evenly distributed horizontal holes 11, and the second boss 7 is provided with a plurality of evenly distributed vertical holes 12; a recessed portion 13 is provided on the surface of both sides of the soil holding basin 1 above the sunken water inlet 4.
[0022] Furthermore, the sunken water inlet 4 on the soil receiving basin 1 and the convex water inlet 3 on the water receiving basin 2 are both integrally formed semicircular structures. The sunken water inlet 4 and the convex water inlet 3 are matched and installed to form a splash-proof water inlet, which is convenient for watering vegetable cultivation.
[0023] Furthermore, the downward projection depth of the first bosses 6 is greater than that of the second bosses 7, and the air trough 8 is located at the uppermost portion of the soil basin 1. This design allows for secure installation via the mounting holes 5 and the fixing bolts 14 located at the locations of the first bosses 6. Each first boss 6 is submerged in water. When the soil basin 1 and water receiving basin 2 are installed, the air trough 8 is separated by the second bosses 7, providing sufficient oxygen for the roots of the vegetables.
[0024] Furthermore, the upper edge of the soil holding basin 1 is a protruding edge 101, which makes it easy to lift the soil holding basin 1 and place the vegetable planting basin in a position suitable for cultivation.
[0025] Furthermore, the mounting hole 5 is an integrally formed structure on the soil holding basin 1 , and an integrally formed reinforcing rib 501 is provided on the outside of the mounting hole 5 , so that the fixing bolt 14 can be inserted into the mounting hole 5 for secure installation when the soil holding basin 1 and the water receiving basin 2 are installed.
[0026] Furthermore, the recessed portion 13 is provided with a plurality of evenly distributed air holes 1301 .
[0027] The installation adopts a combined structure to fix the soil holding basin 1 and the water receiving basin 2 through four mounting holes 5 and fixing bolts 14, and is strengthened and fixed by reinforcing ribs 501, and the six first bosses 6 at the bottom of the soil holding basin 1 are deep into the water receiving basin 2, and the second boss 7 is suspended and does not contact the water in the water receiving basin, and an air groove 8 is separated in the middle. The first boss 6 contacts the water to ensure sufficient moisture, and the second boss 7 does not contact the water, and the air groove 8 provides sufficient oxygen for the vegetables; the concave part 13 on the side of the soil holding basin 1 is provided with a plurality of evenly distributed air holes 1301 for ventilation of the soil holding basin 1. When there is too much moisture in the soil holding basin 1, it can be removed through the air groove 8. The pores flow out, and since the concave design of the concave portion 13 has a guiding effect, when excess water flows out, it will flow to the water inlet and flow into the inside of the water receiving basin 2 from the convex water inlet 3. The water in the soil will not flow out of the basin, which is clean and environmentally friendly. When watering, water can be poured from the upper surface of the soil. After the soil absorbs the water, the excess water flows into the water receiving basin 2 through the vertical through holes 9, the horizontal holes 11, and the vertical holes 12. If it is necessary to keep the vegetables hydrated for a long time, an appropriate amount of water can be added at the water inlet. When moving the vegetable planting basin, press the protruding edge 101 and lift the convex water inlet 3 to stably move the vegetable basin to a position suitable for cultivation.
[0028] The above description is only used to illustrate the technical solution of the present invention and is not intended to limit it. Other modifications or equivalent substitutions made to the technical solution of the present invention by ordinary technicians in this field should be included in the scope of the claims of the present invention as long as they do not depart from the spirit and scope of the technical solution of the present invention.
Claims
1. A balcony vegetable pot, characterized by: It comprises a soil holding basin (1), a water receiving basin (2), an outward convex water receiving port (3), an inward concave water receiving port (4), a mounting hole (5), a first boss (6), a second boss (7), an air groove (8), a vertical through hole (9), a transverse hole (11), a vertical hole (12), a recessed portion (13), and a fixing bolt (14); the water receiving basin (2) is mounted below the soil holding basin (1); a mounting hole (5) is provided at each of the four corners of the soil holding basin (1); and fixing bolts (14) are provided at the four corners of the water receiving basin (2) corresponding to the mounting hole (5); and the fixing bolts (14) are mounted so as to match the mounting hole (5) in size; and the left and right sides of the soil holding basin (1) are both provided with inward concave water receiving ports (4); and the left and right sides of the water receiving basin (2) corresponding to the inward concave water receiving ports (4) are respectively provided with fixing bolts (14). An outward convex water inlet (3) is provided on each side, and the outward convex water inlet (3) and the inward concave water inlet (4) correspond to form a complete water inlet; two groups of first bosses (6) are provided at the bottom of the soil holding basin (1), three first bosses (6) form a group and are located in corresponding positions on the left and right, a second boss (7) is provided at intervals between the three first bosses (6) on the same side, and an air groove (8) is provided at intervals between the first bosses (6) on both sides; each first boss (6) is provided with a plurality of vertical through holes (9) that penetrate the edge of the air groove (8) and are evenly distributed, the air groove (8) is provided with a plurality of evenly distributed transverse holes (11), and the second boss (7) is provided with a plurality of evenly distributed vertical holes (12); recessed portions (13) are provided on the surfaces of both sides of the soil holding basin (1) above the inward concave water inlet (4).
2. The balcony vegetable pot according to claim 1, characterized in that: The inwardly sunken water inlet (4) on the soil receiving basin (1) and the outwardly convex water inlet (3) on the water receiving basin (2) are both integrally formed semicircular structures.
3. The balcony vegetable pot according to claim 1, characterized in that: The downward protrusion depth of the first boss (6) is greater than the downward protrusion depth of the second boss (7), and the air groove (8) is located at the uppermost part of the soil holding basin (1).
4. The balcony vegetable pot according to claim 1, characterized in that: The upper edge of the soil holding basin (1) is a protruding edge (101).
5. The balcony vegetable pot according to claim 1, characterized in that: The mounting hole (5) is an integrally formed structure on the soil holding basin (1), and an integrally formed reinforcing rib (501) is provided on the outside of the mounting hole (5).
6. The balcony vegetable pot according to claim 1, characterized in that: The recessed portion (13) is provided with a plurality of evenly distributed air holes (1301).