IP Library › Granted Patent US 10,577,289
Granted Patent B2
US 10,577,289 · App. 16/217,626 · Granted Mar 3, 2020

Vermiculture bioreactor system and method of use

Inventor: Gabriel Price (Lynn Center, IL)
Assignee: EARNEST EARTH AGRICULTURE, INC.
C05F17/0205C05F17/0009A01K67/0332
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 10,577,289
App. No.
16/217,626
Granted
Mar 3, 2020
Kind
B2
Abstract

A portable, climate-controlled, continuous flow-through, computer-operated vermiculture bioreactor and method for the treatment of organic solid wastes utilizing accelerated microbiological decomposition including composting and vermicomposting to convert materials into environmentally compatible products, including stable biofertilizer. The portable bioreactor design converts carbon-based organic waste into biofertilizer using thermophilic composting, vermicastings and vermicomposting that can be used directly for plant and farming applications.

Claims (52)

1. A gravity fed vermiculture bioreactor system for converting raw organic waste matter into a stable biofertilizer utilizing thermophilic composting and vermicomposting, the bioreactor comprising:

a decomposing chamber for containing the organic waste matter during thermophilic composting and lignin degradation, the decomposing chamber having a sloped base and a door configured to direct thermophilically composted organic waste matter to a removable vermicomposting chamber below the decomposing chamber when the door is in an opened position;

a plurality of sensors for monitoring an environmental condition of the organic waste matter in the decomposition chamber and the vermicomposting chamber; and

a temperature control system comprising a closed ducting arrangement, a valve, and a pump for refrigerant-type cooling of at least one of the decomposing chamber and the vermicomposting chamber based on the environmental condition, wherein the temperature control system transmits data about the environmental condition remotely for data storage;

wherein the vermicomposting chamber is configured to receive the thermophilically composted organic waste matter from the decomposing chamber and is further configured to contain the thermophilically composted organic waste matter during vermicomposting thereof.

2. The bioreactor system of claim 1 , further comprising a forced-air system coupled to the decomposing chamber for directing air into the decomposing chamber and maintaining the contained organic waste matter within a thermophilic temperature range.

3. The bioreactor system of claim 2 , further comprising:

a computer-implemented system comprising:

a digital processing device comprising:

at least one processor;

an operating system configured to perform executable instructions;

a memory; and

a computer program including instructions executable by the digital processing device configured to interface with and control the bioreactor, bioreactor sub-components and the sensors, and communicate with remote monitoring facilities or cloud computing and storage.

4. The bioreactor system of claim 3 , wherein the slope base is configured to promote gravity transfer of the thermophilically composted organic waste matter from the decomposing chamber to the vermicomposting chamber.

5. The bioreactor system of claim 1 , further comprising a locking mechanism capable of opening and then closing the door.

6. The bioreactor system of claim 1 , wherein the vermicomposting chamber is configured to hold a plurality of annelids for consuming the thermophilically composted organic waste matter received from the decomposing chamber.

7. The bioreactor system of claim 6 , wherein the vermicomposting chamber comprises a porous base.

8. The bioreactor system of claim 7 , wherein the vermicomposting chamber further comprises a cutting bar configured to periodically traverse the length of the chamber, near the bottom, to encourage the processed biofertilizer to fall through the porous bottom surface.

9. The bioreactor system of claim 1 , wherein the bioreactor is portable.

10. The bioreactor system of claim 3 , further comprising injectors in the decomposing chamber connected to a second pump and valving configured to add water to the decomposing organic waste matter to maintain a moisture throughout the composting process.

11. The bioreactor system of any one of claim 10 , further comprising a plurality of inoculating pumps and valving configured to inoculate both the decomposing chamber and the vermicomposting chamber with a plurality of microbial inoculum, hormones and nutrients.

12. The bioreactor system of claim 11 , wherein the plurality of microbial inoculumm of the decomposing chamber comprise lignin-degrading fungi and bacteria.

13. The bioreactor system of claim 1 , wherein the plurality of sensors comprise at least one of:

a temperature sensor;

a relative humidity sensor;

a moisture sensor;

a chemical sensor;

an O2 sensor;

a N2 sensor;

a CO2 sensor; and

a pH sensor;

each configured to interface with a computer-implemented system.

14. The bioreactor system of claim 1 , wherein the decomposing chamber is configured to reach a thermophilic temperature greater than at least about 50° C. (122° F.) but less than about 76° C. (169° F.), for a minimum period of time necessary to substantially render any pathogens harmless to humans before further allowing the organic waste matter temperature to drop to an ambient temperature at a natural thermophilic rate.

15. The bioreactor system of claim 1 , wherein an ambient temperature of the organic waste matter in the vermicomposting chamber is between about 10° C. (50° F.) and about 29° C. (84° F.).

16. The bioreactor system of claim 1 , wherein the organic waste matter temperature is prevented from exceeding a maximum thermophilic temperature with the temperature control system.

17. The bioreactor system of claim 1 , wherein the temperature control system further comprises at least one of:

a vented ducting arrangement for forced air infusion;

a closed ducting arrangement for water cooling;

an automated turning system to disrupt the organic waste matter;

an infrared system;

a closed ducting arrangement for water heating;

an electric coiled system for heating; and

a gas burner system for heating.

18. The bioreactor system of claim 1 , further comprising a master control system comprising:

an artificial intelligence system comprising:

an input variable server;

a Fog Node;

a SCADA interface to provide instantaneous automatic control;

Cloud Servers;

Graphical Displays;

an ability to accommodate and provide Real Time Queries; or

software systems providing Deep Learning, Artificial Intelligence programming.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 4, 2019
From: PRICE, GABRIEL
To: EARNEST EARTH AGRICULTURE, INC.
Reel/Frame 048794/0570 →
Continuity (2)
Provisional Application 62617221 · Jan 13, 2018
Related Publication 20190218153A1 · Jul 18, 2019