Energy storage system and alumina calcination applications

US12146426B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-12146426-B2
Application numberUS-202418587787-A
CountryUS
Kind codeB2
Filing dateFeb 26, 2024
Priority dateNov 30, 2020
Publication dateNov 19, 2024
Grant dateNov 19, 2024

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  1. Title

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  2. Abstract

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  3. Assignees and inventors

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  4. Key dates

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  5. First independent claim

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  6. CPC / IPC classifications

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  7. Citations and related patents

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Abstract

Official abstract text for this publication.

An energy storage system (TES) converts variable renewable electricity (VRE) to continuous heat at over 1000° C. Intermittent electrical energy heats a solid medium. Heat from the solid medium is delivered continuously on demand. Heat delivery via flowing gas establishes a thermocline which maintains high outlet temperature throughout discharge. The delivered heat which may be used for processes including power generation and cogeneration. In one application, the TES provides higher-temperature heat through non-combustible fluid to an alumina calcination system used to remove impurities or volatile substances and/or to incur thermal decomposition to a desired product.

First claim

Opening claim text (preview).

What is claimed is: 1. A method of calcination, including: storing heat in a thermal energy storage (TES) medium of a TES system, the heat derived from electricity from a variable renewable energy source having intermittent availability; discharging the stored heat from the TES medium in the form of a heated fluid; providing a material stream to a calciner; heating the material stream using the heated fluid, so as to calcine the material stream and generate a calcined product; and circulating carbon dioxide gas from the calciner to the TES system as fluid to be heated by the TES system. 2. The method of claim 1 , further including: injecting the material stream into the calciner via a first inlet of the calciner; and injecting, via a second inlet of the calciner, the heated fluid into the calciner. 3. The method of claim 1 , further including: before providing the material stream to the calciner, pre-heating the material stream by transferring thermal energy from the heated fluid to the material stream, to generate a pre-heated material stream; and at the calciner, receiving the pre-heated material stream and applying the received thermal energy to further heat the material stream to a temperature higher than a temperature of the pre-heated material stream. 4. The method of claim 1 , wherein the heated fluid is a non-combustive fluid. 5. The method of claim 4 , wherein the non-combustive fluid includes carbon dioxide, air, or a mixture of gases. 6. The method of claim 1 , wherein the material stream that is input to the calciner includes aluminum hydroxide in mineral form, and the calcined product generated by the calciner includes alumina. 7. The method of claim 1 , further including the steps of: burning oxyfuel and/or hydrogen to generate combustion heat; and providing the combustion heat to the calciner. 8. The method of claim 1 , further including the steps of: cooling the calcined product in a cooling cyclone to generate carbon dioxide gas and an output heated fluid; and transferring the output heated fluid to a fluid stream that is provided as an input to the TES system. 9. The method of claim 1 , further including the step of using an electric booster to raise the temperature of the fluid output by the TES system to a higher temperature. 10. The method of claim 9 , including the step of powering the electric booster by a turbine generator. 11. The method of claim 10 , including the step of providing the turbine generator with heat from the TES system. 12. The method of claim 1 , including the step of providing the heated fluid from the TES system to the calciner as direct heated fluid. 13. The method of claim 1 , including the step of providing the heated fluid from the TES system to the calciner to generate steam for use in steam partial calcination. 14. The method of claim 1 , further including the steps of: providing, by a fuel burner, heat to generate another heated fluid; and receiving, at the calciner, the heated fluid and the another heated fluid to heat the provided material stream so as to generate the calcined product. 15. A calcination system, including: a thermal energy storage (TES) system including a TES medium configured to store heat that has been derived from electricity from a variable renewable energy source having intermittent availability, wherein the TES medium is further configured to discharge the stored heat in the form of a heated fluid; and a calciner configured to receive a material stream and heat the material stream using the heated fluid, so as to calcine the material stream to generate a calcined product, wherein the TES system is configured to circulate carbon dioxide gas from the calciner as fluid to be heated by the TES system. 16. The calcination system of claim 15 , wherein the calciner includes: a first inlet configured to receive the material stream; and a second inlet configured to receive the heated fluid. 17. The calcination system of claim 15 , wherein: the TES system is configured to pre-heat the material stream before the material stream is received by the calciner, by transferring thermal energy from the heated fluid to the material stream to generate a pre-heated material stream; and the calciner is configured to receive the pre-heated material stream and apply the received thermal energy to further heat the material stream to a temperature higher than a temperature of the pre-heated material stream. 18. The calcination system of claim 15 , wherein the heated fluid is a non-combustive fluid. 19. The calcination system of claim 18 , wherein the non-combustive fluid includes carbon dioxide, air, or a mixture of gases. 20. The calcination system of claim 15 , wherein the material stream that is input to the calciner includes aluminum hydroxide in mineral form, and the calcined product generated by the calciner includes alumina. 21. The calcination system of claim 15 , further including a fuel burner configured to burn oxyfuel and/or hydrogen to generate combustion heat, and configured to provide the combustion heat to the calciner. 22. The calcination system of claim 15 , further including a cooling cyclone configured to cool the calcined product to generate carbon dioxide gas and an output heated fluid, wherein the calcination system is configured to transfer the output heated fluid to a fluid stream that is provided as an input to the TES system. 23. The calcination system of claim 15 , further including an electric booster configured to raise the temperature of the fluid output by the TES system to a higher temperature. 24. The calcination system of claim 23 , further including a turbine generator configured to power the electric booster. 25. The calcination system of claim 24 , wherein the turbine generator is configured to be powered using the stored heat from the TES system. 26. The calcination system of claim 15 , wherein the calciner is configured to receive the heated fluid from the TES system as direct heated fluid. 27. The calcination system of claim 15 , wherein the calciner is configured to receive the heated fluid from the TES system to generate steam for steam partial calcination. 28. A method of calcination, including: storing heat in a thermal energy storage (TES) medium of a TES system, the heat derived from electricity from a variable renewable energy source having intermittent availability; discharging the stored heat from the TES medium in the form of a heated fluid; providing a material stream to a calciner; heating the material stream using the heated fluid, so as to calcine the material stream and generate a calcined product; and providing thermal energy obtained from exhaust gas exiting the calciner to heat fluid that is input to the TES system. 29. A method of calcination, including: storing heat in a thermal energy storage (TES) medium of a TES system, the heat derived from electricity from a variable renewable energy source having intermittent availability; discharging the stored heat from the TES medium in the form of a heated fluid; providing a material stream to a calciner; heating the material stream using the heated fluid, so as to calcine the material stream and generate a calcined product; before providing the material stream to the calciner, pre-heating the material stream by transferring thermal energy f

Assignees

Inventors

Classifications

  • Details of control, feedback or regulation circuits · CPC title

  • Arrangements for connecting networks of the same frequency but supplied from different sources · CPC title

  • Circuit arrangements for AC mains or AC distribution networks · CPC title

  • being switching converters (H02J1/108, H02J1/12 take precedence) · CPC title

  • Thermal energy storage · CPC title

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Frequently asked questions

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What does patent US12146426B2 cover?
An energy storage system (TES) converts variable renewable electricity (VRE) to continuous heat at over 1000° C. Intermittent electrical energy heats a solid medium. Heat from the solid medium is delivered continuously on demand. Heat delivery via flowing gas establishes a thermocline which maintains high outlet temperature throughout discharge. The delivered heat which may be used for processe…
Who is the assignee on this patent?
Rondo Energy Inc
What technology area does this patent fall under?
Primary CPC classification F01K3/02. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Nov 19 2024 00:00:00 GMT+0000 (Coordinated Universal Time) (B2). Legal status and post-grant events are not shown on this page.
What related patents are in patentsdb?
We list 12 related publications on this page (citations in our corpus or others sharing the same primary CPC).