IP Library Granted Patent US 8,465,562
Granted Patent B2
US 8,465,562 · App. 12/760,241 · Granted Jun 18, 2013

Scalable biomass reactor and method

Inventor: Peter J. Schubert (Naperville, IL)
Assignee: Indiana University Research and Technology Corporation
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Quick Facts
Patent No.
US 8,465,562
App. No.
12/760,241
Granted
Jun 18, 2013
Kind
B2
Abstract

A system and method capable of efficient production of synthesis gas from biomass materials in a manner which can be scaled to relatively large throughput capacities. the system is operable to compact a loose biomass material and simultaneously introduce the compacted biomass material into entrances of internal passages of multiple parallel reactors, heat the compacted biomass material within the reactors to a temperature at which organic molecules within the compacted biomass material break down to form ash and gases comprising carbon monoxide and hydrogen gases, inhibit combustion of the compacted biomass material when heated within the internal passages of the reactors, conduct the carbon monoxide and hydrogen gases through the reactors in a direction opposite the movement of the compacted biomass through the reactors, and remove the ash from the reactor.

Claims (22)

1. A system for producing syngas from biomass materials, the system comprising:

multiple parallel reactors configured in an array, each of the reactors defining an internal passage, each of the internal passages defining an entrance to the reactor thereof, the array being arranged so that the entrances of the reactors lie on a common two-dimensional surface, the reactors and the internal passages thereof being adapted to contain a compacted biomass material moving in parallel directions from the entrances of the reactors and through the internal passages thereof and to contain a reaction of the compacted biomass material by which gases are formed therefrom within the reactors;

feeder devices extending through each of the entrances of the reactors and into each of the internal passages of the reactors, the feeder devices being operable to deliver a loose biomass material to each of the reactors, compact the loose biomass material within the internal passage of each of the reactors, and form from the loose biomass material the compacted biomass within the internal passages of the reactors;

a hopper configured to contain the loose biomass material and from which the loose biomass material is delivered by the feeder devices to each of the reactors;

means for heating the compacted biomass material within the reactors to a volatilization temperature at which organic molecules within the compacted biomass material break down to form ash and the gases formed therefrom, the gases comprising carbon monoxide and hydrogen gases;

means for inhibiting dilution and combustion of the compacted biomass material when heated by the heating means within the internal passages of the reactors by inhibiting ingress of air into each of the internal passages of the reactors through the entrances thereof, the inhibiting means comprising the feeder devices and the compacted biomass material within the internal passages of the reactors;

gas passages having ports that gather the carbon monoxide and hydrogen gases within the internal passages of the reactors, the gas passages for conducting the carbon monoxide and hydrogen gases from each of the reactors; and

means for removing the ash from the reactor.

2. The system according to claim 1 , wherein the reactors are neutral atmospheric pressure reactors.

3. The system according to claim 1 , wherein within each of the reactors there exists a temperature profile comprising a first heating zone where the compacted biomass material is heated to a temperature approaching the volatilization temperature of the compacted biomass material and a subsequent second heating zone where the compacted biomass material is heated to at least the volatilization temperature.

4. The system according to claim 1 , the system further comprising means for individually closing the reactors in an event that an individual reactor of the reactors becomes starved of the loose biomass material.

5. A process comprising operating the system of claim 1 to produce syngas from biomass materials.

6. A process of producing syngas from biomass materials, the process comprising:

simultaneously introducing a loose biomass material into internal passages of each of multiple parallel reactors configured in an array, each of the internal passages defining an entrance to the reactor thereof, the array being arranged so that the entrances of the reactors lie on a common two-dimensional surface, the loose biomass material being introduced into the internal passages with feeder devices that extend through the entrances and into the internal passages of each of the reactors;

compacting the loose biomass material within the internal passage of each of the reactors and forming therefrom a compacted biomass within the internal passages of the reactors so that the compacted biomass material moves in parallel directions from the entrances of the reactors and through the internal passages thereof;

heating the compacted biomass material within the reactors to a volatilization temperature at which a reaction of the compacted biomass material occurs by which organic molecules within the compacted biomass material break down to form ash and gases comprising carbon monoxide and hydrogen gases, the reactors and the internal passages thereof containing the compacted biomass material moving in the parallel directions through the internal passages and containing the reaction of the compacted biomass material;

inhibiting dilution and combustion of the compacted biomass material when heated by the heating means within the internal passages of the reactors by inhibiting ingress of air into each of the internal passages of the reactors through the entrances thereof, the inhibiting means comprising the feeder devices and the compacted biomass material within the internal passages of the reactors;

conducting the carbon monoxide and hydrogen gases through gas passages having ports that gather the carbon monoxide and hydrogen gases within the internal passages of the reactors, the gas passages conducting the carbon monoxide and hydrogen gases from each of the reactors; and

removing the ash from the reactor.

7. The process according to claim 6 , wherein a neutral atmospheric pressure exists within the reactors.

8. The process according to claim 6 , wherein within each of the reactors there exists a temperature profile comprising a first heating zone where the compacted biomass material is heated to a temperature approaching the volatilization temperature of the compacted biomass material and a subsequent second heating zone where the compacted biomass material is heated to at least the volatilization temperature.

9. The system according to claim 6 , the process further comprising individually closing the reactors in an event that an individual reactor of the reactors becomes starved of the loose biomass material.

Assignments (5)
CORRECTIVE ASSIGNMENT TO CORRECT THE INCORRECT PATENT NO. 8891115 PREVIOUSLY RECORDED AT REEL: 040870 FRAME: 0996. ASSIGNOR(S) HEREBY CONFIRMS THE CHANGE OF ADDRESS. Recorded Jan 11, 2017
From: INDIANA UNIVERSITY RESEARCH AND TECHNOLOGY CORPORATION
To: INDIANA UNIVERSITY RESEARCH AND TECHNOLOGY CORPORATION
Reel/Frame 041365/0664 →
CHANGE OF ADDRESS Recorded Dec 9, 2016
From: INDIANA UNIVERSITY RESEARCH AND TECHNOLOGY CORPORATION
To: INDIANA UNIVERSITY RESEARCH AND TECHNOLOGY CORPORATION
Reel/Frame 040870/0996 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 10, 2012
From: SCHUBERT, PETER J.
To: INDIANA UNIVERSITY RESEARCH AND TECHNOLOGY CORPORATION
Reel/Frame 028923/0932 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Aug 18, 2012
From: PACKER ENGINEERING, INC.
To: SCHUBERT, PETER J.
Reel/Frame 028808/0944 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Apr 29, 2010
From: SCHUBERT, PETER J.
To: PACKER ENGINEERING, INC.
Reel/Frame 024309/0642 →
Continuity (2)
Provisional Application 61212624 · Apr 14, 2009
Related Publication 20110094158A1 · Apr 28, 2011