Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane

Herein, the supercritical water gasification (SCWG) of microalgae combined with syngas chemical looping (SCL) for H2 production and storage employing liquid organic H2 carrier (LOHC) system have been proposed and analysed in terms of energy efficiency. Microalgae are converted to syngas in the SCWG...

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Main Authors: Anissa Nurdiawati, Ilman N Zaini, Muhammad Aziz
Format: Article
Language:English
Published: AIDIC Servizi S.r.l. 2018-08-01
Series:Chemical Engineering Transactions
Online Access:https://www.cetjournal.it/index.php/cet/article/view/682
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spelling doaj-e579abe66a444332821e4a60ae5e8ded2021-02-17T20:58:05ZengAIDIC Servizi S.r.l.Chemical Engineering Transactions2283-92162018-08-017010.3303/CET1870252Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane Anissa NurdiawatiIlman N ZainiMuhammad AzizHerein, the supercritical water gasification (SCWG) of microalgae combined with syngas chemical looping (SCL) for H2 production and storage employing liquid organic H2 carrier (LOHC) system have been proposed and analysed in terms of energy efficiency. Microalgae are converted to syngas in the SCWG module and then introduced into the SCL module to produce high-purity of H2 and a separated CO2 stream. H2 storage is achieved via the hydrogenation reaction using toluene to produce methylcyclohexane (MCH). The heat released from the exothermic hydrogenation reaction is exploited to generate steam for sustaining the SCWG reaction. Simulations were performed using Aspen Plus™ considering the feed concentration and SCWG temperature as the system variables. The simulation results show that the SCWG reaction can be energetically self-sustained using the proposed configuration. Based on the process modelling and calculations, the proposed integrated system exhibited of approximately 13.3 %, 42.5 %, and 55.8 % for power generation, H2 production, and total energy efficiency. https://www.cetjournal.it/index.php/cet/article/view/682
collection DOAJ
language English
format Article
sources DOAJ
author Anissa Nurdiawati
Ilman N Zaini
Muhammad Aziz
spellingShingle Anissa Nurdiawati
Ilman N Zaini
Muhammad Aziz
Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
Chemical Engineering Transactions
author_facet Anissa Nurdiawati
Ilman N Zaini
Muhammad Aziz
author_sort Anissa Nurdiawati
title Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
title_short Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
title_full Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
title_fullStr Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
title_full_unstemmed Efficient Hydrogen Production from Algae and its Conversion to Methylcyclohexane
title_sort efficient hydrogen production from algae and its conversion to methylcyclohexane
publisher AIDIC Servizi S.r.l.
series Chemical Engineering Transactions
issn 2283-9216
publishDate 2018-08-01
description Herein, the supercritical water gasification (SCWG) of microalgae combined with syngas chemical looping (SCL) for H2 production and storage employing liquid organic H2 carrier (LOHC) system have been proposed and analysed in terms of energy efficiency. Microalgae are converted to syngas in the SCWG module and then introduced into the SCL module to produce high-purity of H2 and a separated CO2 stream. H2 storage is achieved via the hydrogenation reaction using toluene to produce methylcyclohexane (MCH). The heat released from the exothermic hydrogenation reaction is exploited to generate steam for sustaining the SCWG reaction. Simulations were performed using Aspen Plus™ considering the feed concentration and SCWG temperature as the system variables. The simulation results show that the SCWG reaction can be energetically self-sustained using the proposed configuration. Based on the process modelling and calculations, the proposed integrated system exhibited of approximately 13.3 %, 42.5 %, and 55.8 % for power generation, H2 production, and total energy efficiency.
url https://www.cetjournal.it/index.php/cet/article/view/682
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