Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production
This research aimed to evaluate the pyrolysis reaction for bio-fuel production from palm fibre. A preliminary step to investigate the effect of different type of heterogeneous catalyst revealed three different catalysts: zeolite type (H-Beta), tungsten–zirconia (WO3/ZrO2) and modified alumina (KOH/A...
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Elsevier
2021-11-01
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Series: | Energy Reports |
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Online Access: | http://www.sciencedirect.com/science/article/pii/S235248472100559X |
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author | Snunkhaem Echaroj Nattadon Pannucharoenwong Phadungsak Rattanadecho Chatchai Benjapiyaporn Julaporn Benjapiyaporn |
author_facet | Snunkhaem Echaroj Nattadon Pannucharoenwong Phadungsak Rattanadecho Chatchai Benjapiyaporn Julaporn Benjapiyaporn |
author_sort | Snunkhaem Echaroj |
collection | DOAJ |
description | This research aimed to evaluate the pyrolysis reaction for bio-fuel production from palm fibre. A preliminary step to investigate the effect of different type of heterogeneous catalyst revealed three different catalysts: zeolite type (H-Beta), tungsten–zirconia (WO3/ZrO2) and modified alumina (KOH/Al3O2). An increase in temperature was found to have a positive impact on the production of bio-fuel. Bio-fuel synthesis performed in a stainless steel tubular reactor was found to optimized at 650 °C using WO3/ZrO2 as a catalyst resulting in 40.5% bio-fuel, 7.1% bio-char and 14.3% gas. Formation of gas product is due to the presence of strong acid sites on the surface of WO3/ZrO2 promoting cracking reactions. H-Beta catalyst produced the largest about of bio-char which is also due to strong acid sites and narrow catalytic pore structure which caused rapid deposit of coke and then formation of bio-char. Pyrolysis of palm fibre over KOH/Al2O3 catalyst produced the least amount of bio-fuel, but contain the largest composition of phenolic compounds. These compounds are the transformed from lignin content in palm fibre on alkaline sites of the KOH/Al2O3 catalyst. A larger scale production facility was designed to produce larger amount of bio-fuel for the engine performance test. The biofuel blended gasoline (10% biofuel) was tested in an eight-cylinder spark–ignition engine. Engine performance testing revealed that the brake power and torque generated from combustion of bio-fuel blended oil was lower than conventional gasoline. The brake specific fuel consumption of bio-fuel blended was slightly higher than conventional gasoline. |
first_indexed | 2024-12-14T06:42:03Z |
format | Article |
id | doaj.art-be4041cac4a9448ca267fb77e0e97ab7 |
institution | Directory Open Access Journal |
issn | 2352-4847 |
language | English |
last_indexed | 2024-12-14T06:42:03Z |
publishDate | 2021-11-01 |
publisher | Elsevier |
record_format | Article |
series | Energy Reports |
spelling | doaj.art-be4041cac4a9448ca267fb77e0e97ab72022-12-21T23:13:11ZengElsevierEnergy Reports2352-48472021-11-017599607Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel productionSnunkhaem Echaroj0Nattadon Pannucharoenwong1Phadungsak Rattanadecho2Chatchai Benjapiyaporn3Julaporn Benjapiyaporn4Center of Excellence in Electromagnetic Energy Utilization in Engineering (CEEE), Department of Mechanical Engineering, Faculty of Engineering, Thammasat University, Pathumthani, 12120, ThailandCenter of Excellence in Electromagnetic Energy Utilization in Engineering (CEEE), Department of Mechanical Engineering, Faculty of Engineering, Thammasat University, Pathumthani, 12120, Thailand; Corresponding author.Center of Excellence in Electromagnetic Energy Utilization in Engineering (CEEE), Department of Mechanical Engineering, Faculty of Engineering, Thammasat University, Pathumthani, 12120, ThailandDepartment of Mechanical Engineering, Faculty of Engineering, Khon Kaen University, Khonkaen, 40002, ThailandDepartment of Mechanical Engineering, Faculty of Engineering, Khon Kaen University, Khonkaen, 40002, ThailandThis research aimed to evaluate the pyrolysis reaction for bio-fuel production from palm fibre. A preliminary step to investigate the effect of different type of heterogeneous catalyst revealed three different catalysts: zeolite type (H-Beta), tungsten–zirconia (WO3/ZrO2) and modified alumina (KOH/Al3O2). An increase in temperature was found to have a positive impact on the production of bio-fuel. Bio-fuel synthesis performed in a stainless steel tubular reactor was found to optimized at 650 °C using WO3/ZrO2 as a catalyst resulting in 40.5% bio-fuel, 7.1% bio-char and 14.3% gas. Formation of gas product is due to the presence of strong acid sites on the surface of WO3/ZrO2 promoting cracking reactions. H-Beta catalyst produced the largest about of bio-char which is also due to strong acid sites and narrow catalytic pore structure which caused rapid deposit of coke and then formation of bio-char. Pyrolysis of palm fibre over KOH/Al2O3 catalyst produced the least amount of bio-fuel, but contain the largest composition of phenolic compounds. These compounds are the transformed from lignin content in palm fibre on alkaline sites of the KOH/Al2O3 catalyst. A larger scale production facility was designed to produce larger amount of bio-fuel for the engine performance test. The biofuel blended gasoline (10% biofuel) was tested in an eight-cylinder spark–ignition engine. Engine performance testing revealed that the brake power and torque generated from combustion of bio-fuel blended oil was lower than conventional gasoline. The brake specific fuel consumption of bio-fuel blended was slightly higher than conventional gasoline.http://www.sciencedirect.com/science/article/pii/S235248472100559XEngine performance testingHeterogeneous catalystPyrolysis reactionPhenolic compounds |
spellingShingle | Snunkhaem Echaroj Nattadon Pannucharoenwong Phadungsak Rattanadecho Chatchai Benjapiyaporn Julaporn Benjapiyaporn Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production Energy Reports Engine performance testing Heterogeneous catalyst Pyrolysis reaction Phenolic compounds |
title | Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production |
title_full | Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production |
title_fullStr | Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production |
title_full_unstemmed | Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production |
title_short | Investigation of palm fibre pyrolysis over acidic catalyst for bio-fuel production |
title_sort | investigation of palm fibre pyrolysis over acidic catalyst for bio fuel production |
topic | Engine performance testing Heterogeneous catalyst Pyrolysis reaction Phenolic compounds |
url | http://www.sciencedirect.com/science/article/pii/S235248472100559X |
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