Waste heat recovery in a chemical process and plant, particularly for the synthesis of ammonia

US9810104B2 · US · B2

Patent metadata
FieldValue
Publication numberUS-9810104-B2
Application numberUS-201414444710-A
CountryUS
Kind codeB2
Filing dateJul 28, 2014
Priority dateSep 3, 2009
Publication dateNov 7, 2017
Grant dateNov 7, 2017

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  1. Title

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  2. Abstract

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  5. First independent claim

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Abstract

Official abstract text for this publication.

A method for recovering waste heat in a process for the synthesis of a chemical product, particularly ammonia, where the product is used as the working fluid of a thermodynamic cycle; the waste heat is used to increase the enthalpy content of a high-pressure liquid stream of said product ( 11 ), delivered by a synthesis section ( 10 ), thus obtaining a vapor or supercritical product stream ( 20 ), and energy is recovered by expanding said vapor or supercritical stream across at least one suitable ex-pander ( 13 ); the method is particularly suited to recover the heat content of the syngas effluent after low-temperature shift.

First claim

Opening claim text (preview).

The invention claimed is: 1. A process for the synthesis of a chemical product, comprising the steps of: obtaining at least one make-up reactant in a front-end section; reacting said least one make-up reactant in a synthesis section, obtaining said product in a high-pressure liquid state; heating at least a portion of the liquid product delivered by the synthesis section by heat exchange with a waste heat source made available by said process, obtaining an expandable stream of said product in a vapour state or supercritical state; expanding said expandable product stream to recover energy, obtaining an expanded product stream, and condensing said expanded product stream by heat exchange with a suitable cooling medium, obtaining a product condensate stream; and wherein a portion of the product condensate is pumped substantially at the same pressure of said synthesis section; said portion of the product condensate is then re-heated by heat exchange with said waste heat source or a further waste heat source; after said heating, said portion of product stream is then expanded to recover energy and condensed back to liquid, thus forming a closed loop. 2. The process according to claim 1 , said waste heat source being one or more process stream(s) at a temperature below 350° C. 3. The process according to claim 2 , said waste heat source comprising one or more of the following: a process stream taken from said front-end section; a process stream taken from said synthesis loop; a flue gas from a combustion process; a flue gas from a reforming process of said front-end section. 4. The process according to claim 1 , said chemical product being ammonia, said liquid product being liquid ammonia at a pressure in the range 80-300 bar. 5. The process according to claim 4 , wherein: said liquid ammonia at a pressure of 100-180 bar and a temperature in the range −30 to 10° C. is heated to around 250° C. by heat exchange with said waste heat source, obtaining a supercritical ammonia stream; the supercritical ammonia stream is then expanded to a condensation pressure between 10 and 20 bar; and the ammonia stream is then condensed at a condensation temperature corresponding to said condensation pressure, obtaining a low pressure ammonia condensate. 6. The process according to claim 5 , the condensation pressure being around 14-16 bar and the condensation temperature being around 35° C., the condensation being effected by heat exchange of the condensing ammonia stream with cooling air or water at ambient temperature. 7. The process according to claim 4 , said waste heat source comprising one or more of the following: the ammonia make-up syngas taken from a low-temperature shift reactor of a front-end reforming section; the ammonia make-up syngas effluent from a methanator of the front-end reforming section; the flue gas from a steam reformer of the front-end section; the hot product stream from the synthesis loop. 8. A plant for the synthesis of a chemical product, the plant comprising a front-end section adapted to provide at least one make-up reactant, and a high-pressure synthesis section for reacting said least one make-up reactant and obtaining said chemical product in a liquid state, the plant being characterized by comprising an energy recovery section, said energy recovery section comprising at least: a heat exchanger disposed to exchange heat between at least a portion of the liquid product delivered by the synthesis section, and a waste-heat source stream, obtaining an expandable stream of said product in a vapour state or supercritical state; an expander receiving said expandable stream in vapour state or supercritical state, and delivering mechanical energy produced by expansion of said stream, and a condenser downstream said expander, and disposed to condense the effluent of said expander; wherein a portion of the product condensate is pumped substantially at the same pressure of said synthesis section; said portion of the product condensate is then re-heated by heat exchange with said waste heat source or a further waste heat source; after said heating, said portion of product stream is then expanded to recover energy and condensed back to liquid, thus forming a closed loop. 9. A method for revamping a plant for producing ammonia, the plant comprising a front-end reforming section adapted to provide a make-up ammonia syngas, and a high-pressure synthesis loop, the method comprising the steps of: arranging a heat exchange for heating at least a portion of the liquid ammonia product, by means of heat exchange with at least one source of waste heat, so obtaining a stream of heated, high-pressure ammonia stream in a vapour or supercritical state; providing the provision of at least an expander, for the expansion of said ammonia stream and the production of energy from said waste heat; and providing a condenser adapted to condense the ammonia effluent at the outlet of said expander; wherein a portion of the product condensate is pumped substantially at the same pressure of said synthesis section; said portion of the product condensate is then re-heated by heat exchange with said waste heat source or a further waste heat source; after said heating, said portion of product stream is then expanded to recover energy and condensed back to liquid, thus forming a closed loop. 10. The method according to claim 9 , said source of waste heat being one or more of the following: the ammonia make-up syngas taken from a low-temperature shift reactor of the front-end reforming section; the ammonia make-up syngas effluent from a methanator of the front-end reforming section; the flue gas from a steam reformer of the front-end section; the hot product stream from the synthesis loop. 11. A method for recovering waste heat in a process for the synthesis of a chemical product, where at least one make-up reactant is obtained in a front-end section, and reacted in a synthesis section operating at a pressure higher than said front-end section, obtaining said product in a liquid state and at a high pressure, the method comprising the steps of: using said waste heat to increase the enthalpy content of at least a portion of the liquid product delivered by the synthesis section, by indirect heat exchange, thus obtaining an expandable product stream in a vapour or supercritical state, and recovering energy by expanding said vapour or supercritical stream across at least one suitable expander; wherein a portion of the product condensate is pumped substantially at the same pressure of said synthesis section; said portion of the product condensate is then re-heated by heat exchange with said waste heat source or a further waste heat source; after said heating, said portion of product stream is then expanded to recover energy and condensed back to liquid, thus forming a closed loop. 12. The process according to claim 1 , said waste heat source being one or more process stream(s) at a temperature in the range 50-300° C. 13. A method for revamping a plant for producing ammonia, the plant comprising a front-end reforming section adapted to provide a make-up ammonia syngas, and a high-pressure synthesis loop, the method comprising the steps of: arranging a heat exchange for heating at least a portion of the liquid ammonia product, by means of heat exchange with at least one source of waste heat, so obtaining a stream of heated, high-pressure ammonia stream in a vapour or supercritical state; providing the provision of at least an expander and a generator connected to said expander, for the expansion of said ammonia stream and the production of energy from said waste heat; and pro

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What does patent US9810104B2 cover?
A method for recovering waste heat in a process for the synthesis of a chemical product, particularly ammonia, where the product is used as the working fluid of a thermodynamic cycle; the waste heat is used to increase the enthalpy content of a high-pressure liquid stream of said product ( 11 ), delivered by a synthesis section ( 10 ), thus obtaining a vapor or supercritical product stream ( 20…
Who is the assignee on this patent?
Filippi Ermanno, Ostuni Raffaele, Casale Sa
What technology area does this patent fall under?
Primary CPC classification F01K25/08. Mapped technology areas include Mechanical Engineering.
When was this patent published?
Publication date Tue Nov 07 2017 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 8 related publications on this page (citations in our corpus or others sharing the same primary CPC).