IP Library › Granted Patent US 12,532,821
Granted Patent B1
US 12,532,821 · App. 19/211,498 · Granted Jan 27, 2026

Adjustable dual capillary wick plant irrigation system with water level management

Inventors: Omar Perfecto Betancourt (Miami, FL); Carlos S Rionda, Sr. (Miami, FL); Jose Manuel Gutierrez (Hialeah Gardens, FL)
A01G27/06
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Quick Facts
Patent No.
US 12,532,821
App. No.
19/211,498
Granted
Jan 27, 2026
Kind
B1
Abstract

A plant irrigation system that is placed in a plant container. The plant irrigation system comprises a water reservoir, and a dual capillary wick arrangement. A first, descending wick draws water from the reservoir to a capillary delivery conduit, whose outlet delivers water to a growing medium. The vertical position of this conduit's outlet relative to the reservoir's water level is adjustable, allowing user control of the water delivery rate by altering the hydrostatic head against which the wick operates. A second ascending wick, separate from the first, extends from a lower region of the growing medium upwards, facilitating removal of excess water and enhancing aeration of the growing medium. The system provides sustained, regulated hydration and drainage for plants.

Claims (12)

1 . A plant irrigation system, comprising:

a water reservoir adapted to contain a supply of water, the water reservoir defining a water level therein when containing the supply of water, the water reservoir is configured to be placed in a plant container that is configured to hold a growing medium, the water reservoir has a fill port;

a first capillary wick having a first end disposed in the supply of water within the water reservoir and a second end extending therefrom;

a capillary delivery conduit, the capillary delivery conduit having an inlet and an outlet, the second end of the first capillary wick being operatively connected to the inlet of the capillary delivery conduit such that water drawn by the first capillary wick is directed towards the outlet of the capillary delivery conduit;

an internal capillary medium is contained within the capillary delivery conduit, said internal capillary medium being in communication with the second end of the first capillary wick and extends towards the outlet of said capillary delivery conduit;

a lower wick segment disposed at the outlet of the capillary delivery conduit, the lower wick segment being in capillary communication with the internal capillary medium and configured to interface directly with the growing medium; wherein the capillary delivery conduit is vertically adjustable relative to the water level in the water reservoir, such that a rate of water delivery by the first capillary wick to the growing medium is controllable by a user altering a vertical distance between the water level in the water reservoir and the outlet of the capillary delivery conduit; and

a second ascending capillary wick, separate from the first capillary wick, having a lower end disposed in a lower region of the growing medium within the plant container and an upper end extends towards a surface of the growing medium, said upper end of said second ascending capillary wick being exposed to ambient air to facilitate evaporation of the excess water, said second ascending capillary wick configured to draw excess water upwardly from the lower region of the growing medium, wherein the second ascending capillary wick is directly mounted to an exterior part of the water reservoir.

2 . The plant irrigation system of claim 1 , wherein the first capillary wick is at least partially enclosed by a flexible protective conduit between the water reservoir and the inlet of the capillary delivery conduit.

3 . The plant irrigation system of claim 2 , wherein the flexible protective conduit includes at least one perforation configured to act as a siphon break.

4 . The plant irrigation system of claim 1 , wherein the second ascending capillary wick is further configured to enhance aeration of the growing medium.

5 . The plant irrigation system of claim 1 , wherein the water reservoir is configured to be placed within the plant container.

6 . The plant irrigation system of claim 1 , wherein the second ascending capillary wick is supported, at least in part, by an external surface of the water reservoir.

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