IP Library Granted Patent US 11,459,535
Granted Patent B1
US 11,459,535 · App. 15/350,657 · Granted Oct 4, 2022

Systems and methods for cultivating algae

Inventors: Daniel H. Yeh (Tampa, FL); Ivy Lea Cormier Drexler (St. Petersburg, FL); Melanie Pickett (Tampa, FL); David Fulcher (Tampa, FL)
Assignee: University of South Florida
C12M23/50C12M23/22C12M29/04C12M29/20C12M31/08C12M41/32C12M41/40C12M41/46C12M41/48C12N1/12
View Patent ↗
Loading inventors, assignments & file history…
Monitor This Case
Get email alerts when status or documents change.
Order Certified Copies
Most orders are placed with the USPTO same day — all within 24 business hours.
Order via The Patent Place →
Pre-filled with this patent's details
Quick Facts
Patent No.
US 11,459,535
App. No.
15/350,657
Granted
Oct 4, 2022
Kind
B1
Abstract

In one embodiment, an algae cultivation system includes a basin that contains a liquid and a photobioreactor at least partially immersed in the liquid of the basin, the photobioreactor comprising a closed container including multiple panels that together define an interior space in which algae can be cultivated, at least one of the panels being transparent, the photobioreactor further comprising an inflatable float associated with the container that can be filled with a gas to change one or both of the position and orientation of the container within the liquid.

Claims (27)

1. An algae cultivation system comprising:

a basin that contains a liquid; and

a photobioreactor at least partially immersed in the liquid of the basin, the photobioreactor comprising a container including multiple panels that together define an interior space configured to cultivate algae, at least one of the panels being transparent and a bottom panel comprising a porous membrane filter configured to enable water, gases, and nutrients contained within the liquid of the basin to pass into the interior space of the container but to prevent contaminants contained within the liquid from passing into the interior space, the photobioreactor further comprising an inflatable float associated with the container configured to be filled with a gas to change one or both of the position and orientation of the container within the liquid, the photobioreactor further comprising a gas vent configured to enable photosynthetic gas produced by algae growth within the container to escape the container and a gas line that connects the gas vent to the inflatable float configured to enable gas that escapes the container to travel through the gas line and inflate the inflatable float, wherein inflating the inflatable float with the gas raises a height of the photobioreactor and automatically dewaters algae cultivated within the interior space.

2. The system of claim 1 , wherein the basin is an outdoor, open-top growth media reactor.

3. The system of claim 1 , wherein the container comprises multiple transparent panels.

4. The system of claim 1 , wherein the inflatable float comprises an inflatable bag.

5. The system of claim 1 , wherein the photobioreactor comprises multiple inflatable floats that are mounted to opposite sides of the container and that, when inflated, raise the height of the container in the liquid.

6. The system of claim 1 , wherein the inflatable float is mounted to one side of the container and, when inflated, tilts the container in the liquid.

7. The system of claim 1 , wherein the photobioreactor further comprises an algae extraction port positioned near a bottom of the container configured to enable algae to be removed from the container.

8. The system of claim 1 , wherein the photobioreactor further comprises a gas valve in fluid communication with the gas vent and the gas line, and a controller in electrical communication with the gas valve configured to control opening and closing of the gas valve.

9. The system of claim 8 , wherein the photobioreactor further comprises a sensor in electrical communication with the controller that is configured to sense a parameter indicative of the algae reaching a state at which dewatering should be performed.

10. The system of claim 1 , wherein the photobioreactor further comprises a gas source, a gas valve in fluid communication with the gas source and the gas line, and a controller in electrical communication with the gas valve configured to control opening and closing of the gas valve.

11. A photobioreactor adapted for immersion in a liquid contained within a basin, the photobioreactor comprising:

a container including multiple panels that together define an interior space configured to cultivate algae, at least one of the panels being transparent and a bottom panel comprising a porous membrane filter configured to enable water, gases, and nutrients contained within the liquid of the basin to pass into the interior space of the container but to prevent contaminants contained within the liquid from passing into the interior space;

an inflatable float mounted to the container configured to be filled with a gas to change one or both of the position and orientation of the container within the liquid;

a gas vent incorporated into the container configured to enable gas produced by algae growth within the container to escape; and

a gas line that connects the gas vent to the inflatable float configured to enable gas that escapes the container to inflate the inflatable float;

wherein inflating the inflatable float with the gas raises a height of the photobioreactor and automatically dewaters algae cultivated within the interior space.

12. The photobioreactor of claim 11 , wherein the photobioreactor comprises multiple transparent panels.

13. The photobioreactor of claim 11 , wherein the inflatable float comprises an inflatable bag.

14. The photobioreactor of claim 11 , wherein the photobioreactor comprises multiple inflatable floats that are mounted to opposite sides of the container and that, when inflated, raise the height of the container in the liquid.

15. The photobioreactor of claim 14 , wherein the photobioreactor further comprises a porous membrane filter that enables water, gases, and nutrients contained within the liquid of the basin to pass into the interior space of the container but prevents contaminants contained within the liquid from passing into the interior space and wherein raising of the height of the container enables water to exit the container through the filter to dewater the algae.

16. The photobioreactor of claim 11 , wherein the inflatable float is mounted to one side of the container and, when inflated, tilts the container in the liquid.

17. The photobioreactor of claim 11 , wherein the photobioreactor further comprises an algae extraction port positioned near a bottom of the container through which algae can be removed from the container.

18. The photobioreactor of claim 11 , further comprising a gas valve in fluid communication with the gas vent and the gas line, and a controller in electrical communication with the gas valve configured to control opening and closing of the gas valve.

19. The photobioreactor of claim 18 , further comprising a sensor in electrical communication with the controller that is configured to sense a parameter indicative of the algae reaching a state at which dewatering should be performed.

20. The photobioreactor of claim 11 , further comprising a gas source, a gas valve in fluid communication with the gas source and the gas line, and a controller in electrical communication with the gas valve configured to control opening and closing of the gas valve.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 21, 2018
From: YEH, DANIEL H.; DREXLER, IVY LEA CORMIER; PICKETT, MELANIE; FULCHER, DAVID
To: UNIVERSITY OF SOUTH FLORIDA
Reel/Frame 045304/0480 →
CONFIRMATORY LICENSE Recorded Mar 8, 2017
From: UNIVERSITY OF SOUTH FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 041910/0813 →
Continuity (1)
Provisional Application 62255044 · Nov 13, 2015