IP Library Granted Patent US 10,537,070
Granted Patent B2
US 10,537,070 · App. 15/099,790 · Granted Jan 21, 2020

Process for the production of mycelial composite surfaces in a roll-to-roll format

Inventors: Jeffrey Daniel Betts (Newtown, PA); Gregory John Tudryn (Hadley, MA); Courtney Elizabeth Hart (Adams, MA)
Assignee: Ecovative Design LLC
A01G18/00
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Quick Facts
Patent No.
US 10,537,070
App. No.
15/099,790
Granted
Jan 21, 2020
Kind
B2
Abstract

A method of producing a mycological composite material comprises inoculating a substrate of fibrous material with an inoculum of mycelial tissue; rolling the inoculated substrate into a roll; and thereafter incubating the rolled inoculated substrate for a time sufficient for the mycelial tissue to grow hyphae that enmesh with the substrate to form a cohesive unified filamentous network with the rolled inoculated substrate being characterized in being flexible. The rolled inoculated substrate may be subsequently processed by subjecting lengths of the roll to heat and pressure in molds to form rigid products.

Claims (31)

1. A method of producing a mycological composite material comprising

forming an inoculum of mycelial tissue;

inoculating a substrate of fibrous material with said inoculum;

rolling the inoculated substrate into a roll; and

thereafter incubating the rolled inoculated substrate for a time sufficient for the mycelial tissue to grow hyphae; said hyphae enmeshes with the substrate by extending around the fibers of the substrate to form a cohesive unified filamentous network;

the rolled inoculated substrate being flexible.

2. A method as set forth in claim 1 wherein said step of inoculating includes deposition of said inoculum on a surface of the substrate.

3. A method as set forth in claim 2 wherein said step of inoculating includes conveying the substrate during deposition of said inoculum on the surface of the substrate.

4. A method as set forth in claim 1 wherein said step of inoculating includes conveying the substrate through a bath of said inoculum.

5. A method of producing a mycological composite material comprising

forming a bath of mycelial tissue;

conveying a substrate of fibrous material through said bath to inoculate the substrate with mycelial tissue;

rolling the inoculated substrate into a roll; and

thereafter incubating the rolled inoculated substrate for a time sufficient for the mycelial tissue to grow hyphae; said hyphae enmeshes with the substrate by extending around the fibers of the substrate to form a cohesive unified filamentous network;

the rolled inoculated substrate being flexible.

6. A method as set forth in claim 5 wherein said mycelial tissue contains chitin and glucan-containing mycelial cells.

7. A method as set forth in claim 6 further comprising the steps of unrolling a predetermined length of the incubated substrate from the rolled substrate and thereafter subjecting said length to heat and pressure sufficient to cause the glucan-containing mycelial cells therein to bond said length into a rigid structure.

8. A method as set forth in claim 5 further comprising the steps of rolling the incubated substrate with a support web of porous material into a roll of alternating layers of substrate and porous material and dehydrating the rolled substrate to below 20% moisture.

9. A method as set forth in claim 8 further comprising the step of passing a flow of moisture through said layers of porous material into said layers of substrate to re-hydrate said layers of substrate to between 30% and 70% moisture.

10. A method as set forth in claim 8 further comprising the step of unrolling a predetermined length of the incubated substrate and support web from the rolled substrate and thereafter passing a flow of steam through said layers of porous material into said layers of substrate while simultaneously compressing said length to cause the glucan-containing mycelial cells therein to bond said length into a rigid structure.

11. A mycological composite material comprising a web of fibrous material characterized in having mycelial tissue throughout said material with hyphae thereof extending around fibers of the fibrous material to form a cohesive unified filamentous network and wherein said mycelial tissue contains chitin and glucan-containing mycelial cells.

12. A mycological composite material as set forth in claim 11 wherein said web is in a roll and has a web of porous material disposed in alternating layers with said web of fibrous material.

13. A mycological composite material as set forth in claim 11 characterized in being flexible.

14. A mycological composite material as set forth in claim 11 characterized in being rigid and having said chitin and glucan-containing mycelial cells forming crosslinks throughout said material.

15. A mycological composite biomaterial comprising

a first material inoculated with an inoculum of mycelial tissue;

a second material in contact with a surface of the inoculated first material; and

hyphae extending from the inoculated first material and penetrating into and enmeshing with the second material.

16. A mycological composite biomaterial as set forth in claim 15 wherein said first material is made of fibrous material and said inoculum contains chitin and glucan-containing mycelial cells.

17. A mycological composite biomaterial as set forth in claim 16 wherein said second material is a fibrous substrate.

18. A mycological composite biomaterial as set forth in claim 16 characterized in having been subjected to heat and pressure sufficient to cause the glucan-containing mycelial cells therein to bond said mycological composite biomaterial into a rigid structure.

Assignments (2)
CHANGE OF NAME Recorded Aug 13, 2024
From: ECOVATIVE DESIGN LLC
To: ECOVATIVE LLC
Reel/Frame 068569/0703 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 15, 2016
From: BETTS, JEFFREY DANIEL; TUDRYN, GREGORY JOHM; HART, COURTNEY ELIZABETH
To: ECOVATIVE DESIGN LLC
Reel/Frame 038295/0104 →
Continuity (2)
Provisional Application 62147813 · Apr 15, 2015
Related Publication 20160302365A1 · Oct 20, 2016
Cited By (4)
US 12,415,983 US 12,433,315 US 12,467,171 US 12,503,576