Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation

State-of-the-art integrated processes for hydrogen production from low rank coal (LRC) consisting of drying, gasification, chemical looping, and hydrogenation is proposed based on enhanced process integration (EPI). This paper focuses mainly on the performance of drying module, especially related to...

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Main Authors: M. Aziz, T. Oda, T. Kashiwagi
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2015-09-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/4510
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spelling doaj-2e837517ff7b4a5ca3ac453e366c03472021-02-20T21:05:35ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162015-09-014510.3303/CET1545103Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and HydrogenationM. AzizT. OdaT. KashiwagiState-of-the-art integrated processes for hydrogen production from low rank coal (LRC) consisting of drying, gasification, chemical looping, and hydrogenation is proposed based on enhanced process integration (EPI). This paper focuses mainly on the performance of drying module, especially related to energy efficiency during drying. EPI, which is a combination of exergy recovery and process integration, in developed in order to minimize the total exergy destruction throughout the integrated processes. Each process module is designed initially based on exergy recovery to maximize the recirculated heat amount in each process module. Furthermore, the developed process modules are integrated based on process integration, hence the exergy destruction throughout the integrated processes can be minimized. LRC is initially dried in drying module employing exergy recovery and utilizing steam as drying medium. Hot dried- LRC is fed directly to gasification module for conversion producing syngas. The produced syngas is then flowing to chemical looping module to produce hydrogen, CO2 and power. Finally, the produced hydrogen is then stored in liquid organic hydrogen carrier (toluene-methylcyclohexane). On the other hand, the separated CO2 can be sequestered to achieve a clean coal conversion. From process calculation, the proposed drying module shows very high energy efficiency, which is about one sixth to which is required in drying with conventional heat recovery.https://www.cetjournal.it/index.php/cet/article/view/4510
collection DOAJ
language English
format Article
sources DOAJ
author M. Aziz
T. Oda
T. Kashiwagi
spellingShingle M. Aziz
T. Oda
T. Kashiwagi
Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
Chemical Engineering Transactions
author_facet M. Aziz
T. Oda
T. Kashiwagi
author_sort M. Aziz
title Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
title_short Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
title_full Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
title_fullStr Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
title_full_unstemmed Clean Hydrogen Production from Low Rank Coal: Novel Integration of Drying, Gasification, Chemical Looping, and Hydrogenation
title_sort clean hydrogen production from low rank coal: novel integration of drying, gasification, chemical looping, and hydrogenation
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2015-09-01
description State-of-the-art integrated processes for hydrogen production from low rank coal (LRC) consisting of drying, gasification, chemical looping, and hydrogenation is proposed based on enhanced process integration (EPI). This paper focuses mainly on the performance of drying module, especially related to energy efficiency during drying. EPI, which is a combination of exergy recovery and process integration, in developed in order to minimize the total exergy destruction throughout the integrated processes. Each process module is designed initially based on exergy recovery to maximize the recirculated heat amount in each process module. Furthermore, the developed process modules are integrated based on process integration, hence the exergy destruction throughout the integrated processes can be minimized. LRC is initially dried in drying module employing exergy recovery and utilizing steam as drying medium. Hot dried- LRC is fed directly to gasification module for conversion producing syngas. The produced syngas is then flowing to chemical looping module to produce hydrogen, CO2 and power. Finally, the produced hydrogen is then stored in liquid organic hydrogen carrier (toluene-methylcyclohexane). On the other hand, the separated CO2 can be sequestered to achieve a clean coal conversion. From process calculation, the proposed drying module shows very high energy efficiency, which is about one sixth to which is required in drying with conventional heat recovery.
url https://www.cetjournal.it/index.php/cet/article/view/4510
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AT toda cleanhydrogenproductionfromlowrankcoalnovelintegrationofdryinggasificationchemicalloopingandhydrogenation
AT tkashiwagi cleanhydrogenproductionfromlowrankcoalnovelintegrationofdryinggasificationchemicalloopingandhydrogenation
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