IP Library Granted Patent US 9,485,917
Granted Patent B2
US 9,485,917 · App. 12/001,556 · Granted Nov 8, 2016

Method for producing grown materials and products made thereby

Inventors: Eben Bayer (Troy, NY); Gavin McIntyre (Troy, NY)
Assignee: ECOVATIVE DESIGN, LLC
A01G1/001A01G1/046B32B5/02C05D9/00C12N1/14C12N11/14Y10T428/1348Y10T428/249921Y10T428/31504
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Quick Facts
Patent No.
US 9,485,917
App. No.
12/001,556
Granted
Nov 8, 2016
Kind
B2
Abstract

The composite material is comprised of a substrate of discrete particles and a network of interconnected mycelia cells bonding the discrete particles together. The composite material is made by inoculating a substrate of discrete particles and a nutrient material with a preselected fungus. The fungus digests the nutrient material over a period of time sufficient to grow hyphae and to allow the hyphae to form a network of interconnected mycelia cells through and around the discrete particles thereby bonding the discrete particles together to form a self-supporting composite material. In another embodiment, the fungus is allowed to grow as a fruiting body out of the substrate and within an enclosure to completely fill the enclosure to form a self-supporting structure.

Claims (62)

1. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture,

allowing said fungus to digest said nutrient material in said mixture over period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; and

wherein at least one of said inoculum and said mixture includes water and which further comprises the step of heating the formed self-supporting composite material to a temperature sufficient to kill said fungus.

2. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture;

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; and

treating the formed self-supporting composite material by at least one of heating, irradiation, freezing dehydration and chemically to kill said fungus.

3. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture;

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to, allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; and

wherein said fungus is selected from the group consisting of at least one of Pleurotus ostreatus, Agaricus arvensis, Ganoderma tsugae and Inonotus obliquus.

4. A method of making a composite material comprising the steps of

forming an inoculum including preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

placing said mixture in a cavity of predetermined shape in a form

adding said inoculum to said mixture in said cavity;

covering the form after adding said inoculum to prevent, exposure of the inoculum to sunlight; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material whereby the resultant self-supporting composite material adopts the shape of said cavity.

5. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; and wherein said steps are performed on a continuous basis to form an elongated self-supporting composite material.

6. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles wherein said discrete particles are selected from the group consisting of at least one of vermiculite and perlite and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material.

7. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material wherein said mixture of a substrate of discrete particles and a nutrient material includes bulking particles and insulating particles, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture;

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material.

8. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

adding said inoculum to said mixture;

adding elements to said mixture having a dimension 5 times larger than the mean diameter of the largest average particle size; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material.

9. A method as set forth in claim 8 wherein said elements are at least one of rods, cubes, panels, and lattices.

10. A method as set forth in claim 8 wherein said elements are selected from the group including conduit, electrical wiring, electrical outlets, light switches, sensors, temperature controls, window frames, door jambs, and piping.

11. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming a mixture of a substrate of discrete particles and a nutrient material, said nutrient material being capable of being digested by said fungi;

placing said mixture in a cavity of predetermined shape in a form,

placing a stiff sheet of material on said mixture;

adding said inoculum to said mixture in said cavity; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; whereby the resultant self-supporting composite material adopts the shape of said cavity with said stiff sheet bonded thereto.

12. A method of making a composite material comprising the steps of

forming an inoculum including a preselected fungus;

forming mixture of a substrate of discrete articles and a nutrient material, said nutrient material being capable of being digested by said fungi;

placing said mixture in a cavity of predetermined shape in a form,

placing a stiff sheet of material within said mixture;

adding said inoculum said mixture in said cavity; and

allowing said fungus to digest said nutrient material in said mixture over a period sufficient to grow hyphae and to allow said hyphae to form a network of interconnected mycelia cells through and around said discrete particles thereby bonding said discrete particles together to form a self-supporting composite material; whereby the resultant self-supporting composite material adopts the shape of said cavity with said stiff sheet included therein.

Assignments (7)
CHANGE OF NAME Recorded Aug 13, 2024
From: ECOVATIVE DESIGN LLC
To: ECOVATIVE LLC
Reel/Frame 068569/0703 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 14, 2012
From: BAYER, EBEN; MCINTYRE, GAVIN
To: ECOVATIVE DESIGN LLC
Reel/Frame 028375/0994 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 29, 2012
From: RENSSELAER POLYTECHNIC INSTITUTE
To: BAYER, EBEN; MCINTYRE, GAVIN
Reel/Frame 028281/0688 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 2, 2009
From: BAYER, EBEN; MCINTYRE, GAVIN
To: ECOVATIVE DESIGN LLC
Reel/Frame 022763/0315 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded May 27, 2009
From: RENSSELAER POLYTECHNIC INSTITUTE
To: BAYER, EBEN; MCINTYRE, GAVIN
Reel/Frame 022737/0747 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2007
From: MCINTYRE, GAVIN; BAYER, EBEN
To: RENSSELAER POLYTECHNIC INSTITUTE
Reel/Frame 020282/0693 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 12, 2007
From: SWERSEY, BURT
To: RENSSELAER POLYTECHNIC INSTITUTE
Reel/Frame 020282/0697 →
Continuity (3)
Provisional Application 60875243 · Dec 15, 2006
Provisional Application 60927458 · May 3, 2007
Related Publication 20080145577A1 · Jun 19, 2008