IP Library Granted Patent US 9,638,174
Granted Patent B2
US 9,638,174 · App. 14/388,867 · Granted May 2, 2017

Hybrid receiver-combustor

Inventors: Graham J. Nathan (Ironbank, AU); Bassam Dally (Tranmere, AU); Peter Ashman (Walkerville, AU); Aldo Steinfeld (Brugg, CH)
Assignee: ADELAIDE RESEARCH & INNOVATION PTY LTD
F03G6/06F01D15/10F03G6/00F24J2/04F24J2/07Y02E10/41Y02E10/46
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Quick Facts
Patent No.
US 9,638,174
App. No.
14/388,867
Granted
May 2, 2017
Kind
B2
Abstract

A hybrid receiver-combustor ( 100 ) for capturing heat energy from a solar source and a fuel source. The hybrid receiver-combustor ( 100 ) includes a vessel ( 110 ) for acting both as a combustion furnace and as a solar receiver, and a plurality of burners ( 180 ) for combusting an oxidant stream, such as an air stream, and a fuel stream. The vessel ( 110 ) includes a casing ( 120 ) defining a cavity ( 125 ) having an aperture ( 130 ) for receiving the concentrated solar radiation from the solar source. The cavity ( 125 ) provides a chamber defining a zone ( 126 ) which can function as a combustion zone for production of heat energy through a combustion process using the fuel and into which concentrated solar radiation can be received from the solar source through the aperture ( 130 ). A heat energy absorber ( 190 ) configured as a heat exchanger is provided to receive heat energy from concentrated solar radiation entering the cavity ( 125 ) through the aperture ( 130 ) and from combustion within the cavity. A fluidic seal system ( 135 ) is associated with the aperture ( 130 ) and is operable to establish a fluidic seal to restrict fluid flow through the aperture ( 130 ) during the combustion process. The fluidic seal comprises exhaust gas from the combustion process within the cavity ( 125 ).

Claims (21)

1. A hybrid receiver-combustor for capturing heat energy from a solar source and a fuel source, the hybrid receiver-combustor comprising:

a chamber operable as a combustion zone for production of heat energy through a combustion process using the fuel source;

the chamber having an aperture through which concentrated solar radiation is receivable;

a fluidic seal system associated with the aperture, the fluidic seal system being operable to establish a fluidic seal for restricting fluid flow through the aperture during the combustion process; and

a heat energy absorber for receiving heat energy from the concentrated solar radiation and also receiving heat energy from combustion within the chamber; the heat energy absorber comprises a heat energy transfer medium;

wherein the heat energy absorber confronts the chamber and is disposed around the chamber, whereby the chamber provides a common zone relative to the heat energy absorber for receiving concentrated solar radiation and for production of heat energy through the combustion process; and

wherein the heat energy absorber and the aperture cooperate to define a boundary of the chamber.

2. The hybrid receiver-combustor according to claim 1 operable to use captured heat energy to heat a heat-transfer fluid, the hybrid receiver-combustor further comprising:

a heat exchanger for heating the heat-transfer fluid, the heat exchanger being associated with the chamber for receiving heat energy from the concentrated solar radiation and also receiving heat energy from combustion process within the common zone, wherein the heat energy absorber comprises the heat exchanger and wherein the heat energy transfer medium comprises the heat-transfer fluid.

3. The hybrid receiver-combustor according to claim 1 operable to use captured heat energy to heat a heat-transfer fluid, the hybrid receiver-combustor further comprising:

a vessel useable both as a combustion furnace and as a solar receiver, the vessel including a casing defining a cavity providing said chamber;

a burner for combusting an oxidant stream and fuel stream, the burner in fluid communication with the cavity for directing a flame into the cavity, the flame creating an exhaust gas; and

a heat exchanger for heating the heat-transfer fluid, the heat exchanger being within the cavity, the heat energy absorber comprising the heat exchanger and the heat energy transfer medium comprising the heat-transfer fluid, whereby in use the heat-transfer fluid receives the heat energy from concentrated solar radiation and from the burner in ratios varying from 0:1 to 1:0 and the heat energy is controllable so as to reduce thermal shock-loads that would otherwise be associated with rapid changes in solar radiation.

4. The hybrid receiver-combustor according to claim 1 wherein the fluidic seal comprises exhaust gas from the combustion process.

5. The hybrid receiver-combustor of claim 4 wherein the fluidic seal comprises an exhaust gas curtain.

6. The hybrid receiver-combustor according to claim 4 further comprising an exhaust gas path for conveying exhaust gas from the combustion process to establish the fluidic seal, wherein the fluidic seal system comprises the exhaust gas path.

7. The hybrid receiver-combustor according to claim 4 further comprising at least one burner for combusting an oxidant stream and fuel stream, the burner being in fluid communication with the chamber for directing a flame into the chamber, the flame creating the exhaust gas.

8. The hybrid receiver-combustor according to claim 1 wherein the heat energy absorber comprises a heat energy transfer medium.

9. The hybrid receiver-combustor according to claim 8 wherein the heat energy absorber further comprises a heat exchanger associated with the chamber for receiving heat energy from the concentrated solar radiation and also receiving heat energy from combustion within the chamber and transferring the heat received to the heat energy absorber medium.

10. The hybrid receiver-combustor according to claim 8 wherein the heat energy transfer medium comprises a heat-transfer fluid.

11. The hybrid receiver-combustor according to claim 8 wherein the heat energy transfer medium comprises a working fluid.

Assignments (5)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2015
From: STEINFELD, ALDO
To: THE UNIVERSITY OF ADELAIDE
Reel/Frame 037237/0445 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2015
From: DALLY, BASSAM
To: THE UNIVERSITY OF ADELAIDE
Reel/Frame 037237/0595 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2015
From: NATHAN, GRAHAM JERROLD
To: THE UNIVERSITY OF ADELAIDE
Reel/Frame 037237/0700 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2015
From: ASHMAN, PETER
To: THE UNIVERSITY OF ADELAIDE
Reel/Frame 037237/0788 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Dec 8, 2015
From: THE UNIVERSITY OF ADELAIDE
To: ADELAIDE RESEARCH & INNOVATION PTY LTD
Reel/Frame 037237/0961 →
Priority Claims (1)
AU 2012901258 · Mar 29, 2012 · national
Continuity (1)
Related Publication 20150054284A1 · Feb 26, 2015