IP Library Granted Patent US 10,633,628
Granted Patent B1
US 10,633,628 · App. 15/350,582 · Granted Apr 28, 2020

Systems for cultivating and dewatering 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
C12N1/12C12M23/22C12M29/04C12M29/20C12M41/48C12M47/02
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Quick Facts
Patent No.
US 10,633,628
App. No.
15/350,582
Granted
Apr 28, 2020
Kind
B1
Abstract

In one embodiment, an algae cultivation system includes a photobioreactor adapted for immersion in growth media contained within the growth media reactor, the photobioreactor including 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, a porous membrane filter incorporated into one of the panels that enables water, carbon dioxide, and nutrients contained within the growth media to pass into the interior space but prevents contaminants contained within the growth media from passing into the interior space, and a gas control valve incorporated into one of the panels that when open enables photosynthetic gas produced by algae growth within the container to escape but when closed prevents the photosynthetic gas from escaping so as to build pressure within the container that forces water out from the container and dewaters the algae.

Claims (30)

1. An algae cultivation system comprising:

a growth media reactor that contains growth media; and

a photobioreactor at least partially immersed in the growth media of the growth media reactor, the photobioreactor comprising a container including multiple panels that together define an interior space in which algae can be cultivated, at least one of the panels being transparent, wherein a bottom panel includes a porous membrane filter having pores approximately 0.01 to 0.2 μm in size that enables water, carbon dioxide, and nutrients contained within the growth media to pass into the interior space but prevents contaminants contained within the growth media from passing into the interior space;

a sensor provided within the container configured to sense a parameter of the algae that is indicative of when the algae is ready for harvesting;

an electronically actuated gas control valve associated with one of the container panels configured to be selectively opened and closed, wherein when the gas control valve is open the valve enables photosynthetic gas produced by algae growth within the container to escape but when the gas control valve is closed the valve prevents the photosynthetic gas from escaping so as to build pressure within the container that forces water out from the container through the porous membrane filter and dewaters the algae; and

a controller in electrical communication with the sensor and the gas control valve, the controller being configured to receive signals from the sensor and, when the signals indicate that the algae is ready for harvesting, close the gas control valve to dewater the algae to prepare it for harvesting.

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

3. The system of claim 1 , wherein the photobioreactor comprises multiple transparent panels made of a clear polymeric material.

4. The system of claim 1 , wherein the container includes a bottom panel that is slanted so as to form an angle with a horizontal plane.

5. The system of claim 1 , wherein the container includes two bottom panels that are slanted so as to form a V-shaped trough in which algae can settle.

6. The system of claim 1 , wherein the photobioreactor further comprises an algae extraction port through which dewatered algae can be removed from a bottom of the container.

7. The system of claim 1 , wherein the sensor comprises one of an optical sensor, a density sensor, a pressure sensor, a temperature sensor, a chlorophyll sensor, a nutrient/ion sensor, a dissolved gas sensor, a turbidity sensor, a gas flow sensor, or a combination thereof.

8. The system of claim 1 , wherein the electronically actuated gas control valve comprises a solenoid valve.

9. The system of claim 1 , further comprising a pump configured to regulate gas pressure within the container.

10. The system of claim 9 , wherein the pump is configured to alternatively deliver gas to and remove gas from the container.

11. A photobioreactor adapted for immersion in growth media contained within a growth media reactor, the photobioreactor comprising:

a container including multiple panels that together define an interior space in which algae can be cultivated, at least one of the panels being transparent;

a porous membrane filter having pores approximately 0.01 to 0.2 μm in size incorporated into a bottom panel of the container that enables water, carbon dioxide, and nutrients contained within the growth media to pass into the interior space but prevents contaminants contained within the growth media from passing into the interior space;

a sensor provided within the container configured to sense a parameter of the algae that is indicative of when the algae is ready for harvesting;

an electronically actuated gas control valve incorporated into one of the panels of the container configured to be selectively opened and closed, wherein when the gas control valve is open the valve enables photosynthetic gas produced by algae growth within the container to escape but when the gas control valve is closed the valve prevents the photosynthetic gas from escaping so as to build pressure within the container that forces water out from the container and dewaters the algae; and

a controller in electrical communication with the sensor and the gas control valve, the controller being configured to receive signals from the sensor and, when the signals indicate that the algae is ready for harvesting, close the gas control valve to dewater the algae to prepare it for harvesting.

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

13. The photobioreactor of claim 12 , wherein the transparent panels are made of a clear polymeric material.

14. The photobioreactor of claim 11 , wherein the container includes a bottom panel that is slanted so as to form an angle with a horizontal plane.

15. The photobioreactor of claim 11 , wherein the container includes two bottom panels that are slanted so as to form a V-shaped trough in which algae can settle.

16. The photobioreactor of claim 11 , further comprising an algae extraction port through which dewatered algae can be removed from a bottom of the container.

17. The photobioreactor of claim 11 , wherein the sensor comprises one of an optical sensor, a density sensor, a pressure sensor, a temperature sensor, a chlorophyll sensor, a nutrient/ion sensor, a dissolved gas sensor, a turbidity sensor, a gas flow sensor, or a combination thereof.

18. The photobioreactor of claim 11 , wherein the electronically actuated gas control valve comprises a solenoid valve.

19. The photobioreactor of claim 11 , further comprising a pump configured to regulate gas pressure within the container.

20. The photobioreactor of claim 19 , wherein the pump is configured to alternatively deliver gas to and remove gas from the container.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 25, 2019
From: YEH, DANIEL H.; DREXLER, IVY LEA CORMIER; PICKETT, MELANIE; FULCHER, DAVID
To: UNIVERSITY OF SOUTH FLORIDA
Reel/Frame 048138/0335 →
CONFIRMATORY LICENSE Recorded Mar 8, 2017
From: UNIVERSITY OF SOUTH FLORIDA
To: NATIONAL SCIENCE FOUNDATION
Reel/Frame 041910/0824 →
Continuity (1)
Provisional Application 62255044 · Nov 13, 2015
Cited By (1)
US 12,622,371