Hydrothermal carbonization of spent mushroom compost waste compared against torrefaction and pyrolysis

dc.contributor.authorAtallah, Emile
dc.contributor.authorZeaiter, Joseph
dc.contributor.authorAhmad, Mohammad N.
dc.contributor.authorLeahy, James J.
dc.contributor.authorKwapiński, Witold
dc.contributor.departmentDepartment of Chemical and Petroleum Engineering
dc.contributor.facultyMaroun Semaan Faculty of Engineering and Architecture (MSFEA)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:26:28Z
dc.date.available2025-01-24T11:26:28Z
dc.date.issued2021
dc.description.abstractThe effects of operating conditions (temperature, residence time, and water contents) of hydrothermal carbonization (HTC) of spent mushroom compost (SMC) waste on the hydrochars (HCs) and liquid effluent characteristics were experimentally revised and ranked in increasing order: residence time < dilution factor < temperature. HTC upgraded the energy capabilities by doubling their heating values and increasing their fixed carbon contents four times. HTC also enhanced the soil amendment characteristics of SMC feedstock in terms of increasing the adsorption polar heads concentration, enriching its calcium and heavy metals contents after a thorough inorganic contents evaluation, doubling the surface area and increasing the pore size by a factor of five. When compared against biocoal from torrefaction in another study, HCs contained less toxic oxygenated compounds and had an 11% higher HHV at lower temperature (i.e. lower energy cost). On the other hand, HCs showed higher surface area (25 m2/g at 250 °C in HTC compared to 16 m2/g at 550 °C in pyrolysis), close adsorption characteristic, and comparable energy capabilities (22.72 MJ/kg at 700 °Cs in pyrolysis compared to 20.7 MJ/kg at 250 °C in HTC) to pyrolysis at significantly lower temperature. GCMS along with UV were used to verify the reviewed degradation mechanism and evaluate the effect of process parameters on this mechanism and on the composition and toxicity of the HTC liquid effluent. They showed that acetic and formic acids, ethanol, phenol, and acetaldehyde were the major compounds that had resulted from the degradation of cellulose, hemicellulose, and lignin. Their concentrations increased with temperature and residence time, but was dependent on temperature in the case of increasing the dilution factor. Nevertheless, HTC degradation enhanced the total acids-phenols concentration in the liquid effluent by 700%. © 2021
dc.identifier.doihttps://doi.org/10.1016/j.fuproc.2021.106795
dc.identifier.eid2-s2.0-85101740805
dc.identifier.urihttp://hdl.handle.net/10938/26602
dc.language.isoen
dc.publisherElsevier B.V.
dc.relation.ispartofFuel Processing Technology
dc.sourceScopus
dc.subjectDegradation mechanism
dc.subjectEnergy
dc.subjectHydrochars
dc.subjectSoil amendment
dc.subjectTotal acid-phenol
dc.subjectBiodegradation
dc.subjectCarbonization
dc.subjectCellulose
dc.subjectComposting
dc.subjectEffluents
dc.subjectHeavy metals
dc.subjectDegradation
dc.subjectLiquids
dc.subjectPhenols
dc.subjectPore size
dc.subjectPyrolysis
dc.subjectSoils
dc.subjectThermochemistry
dc.subjectAdsorption characteristic
dc.subjectHeavy metals content
dc.subjectHydrothermal carbonization
dc.subjectOperating condition
dc.subjectOxygenated compounds
dc.subjectProcess parameters
dc.subjectSpent mushroom compost
dc.subjectAcetaldehyde
dc.titleHydrothermal carbonization of spent mushroom compost waste compared against torrefaction and pyrolysis
dc.typeArticle

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