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Hydrothermal liquefaction for biochar production from finger millet waste: its valorisation, process optimization, and characterization.
Hussain, Afzal; Kandari, Ayush; Kotiyal, Sushant; Kumar, Vinod; Upadhyay, Shuchi; Ahmad, Waseem; Singh, Ajay; Kumar, Sanjay.
Affiliation
  • Hussain A; Department of Pharmacognosy, College of Pharmacy, King Saud University PO Box 2457 Riyadh 11451 Saudi Arabia.
  • Kandari A; Department of Food Science and Technology, Graphic Era (Deemed to be University) Dehradun 248002 Uttarakhand India mr.sanju4u@gmail.com.
  • Kotiyal S; Department of Food Science and Technology, Graphic Era (Deemed to be University) Dehradun 248002 Uttarakhand India mr.sanju4u@gmail.com.
  • Kumar V; Department of Food Science and Technology, Graphic Era (Deemed to be University) Dehradun 248002 Uttarakhand India mr.sanju4u@gmail.com.
  • Upadhyay S; Peoples' Friendship, University of Russia, (RUDN University) Moscow 117198 Russian Federation.
  • Ahmad W; Graphic Era Hill University Dehradun 248002 Uttarakhand India.
  • Singh A; Department of Allied Health Sciences, School of Health Sciences and Technology, UPES Dehradun 248007 Uttarakhand India.
  • Kumar S; Department of Chemistry, Graphic Era (Deemed to be University) Dehradun 248002 Uttarakhand India.
RSC Adv ; 14(34): 24492-24502, 2024 Aug 05.
Article in En | MEDLINE | ID: mdl-39108965
ABSTRACT
In this study, the potential of finger millet waste biomass (FMWB) as a source of biochar production through hydrothermal liquefaction (HTL) was investigated. The HTL process was designed using Box-Behnken design (BBD) and carried out with process variables, i.e., temperature (250 °C, 350 °C, and 450 °C), time (30 min, 45 min, and 60 min), and solid-to-water ratio (1 6, 1 8, and 1 10). The responses, i.e., biochar yield (%), bulk density (g cm-3), pH, and high heating value (HHV), were analysed. Optimisation was done using design expert software (version 13.0.1). The optimized finger millet waste biochar (O-FMWBC) was produced at optimum values (450 °C, 1 10, and 33.5 min). The results of proximate and elemental analysis revealed that moisture, ash, and volatile content, H, and O of O-FMWBC decreased while fixed carbon, thermal stability, and C content increased compared to FMWB. FT-IR, SEM-EDX, and XRD analyses were performed for O-FMWBC. The results of FT-IR showed the presence of O-H, C-H, C[double bond, length as m-dash]O, and C[double bond, length as m-dash]C functional groups. The SEM image revealed the rough surface of O-FMWBC, and XRD confirmed the production of a broad range of inorganic compounds and minerals. This study provides the full exploitation of FMWBC as a source of solid fuel.

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: RSC Adv Year: 2024 Document type: Article Country of publication: United kingdom

Full text: 1 Collection: 01-internacional Database: MEDLINE Language: En Journal: RSC Adv Year: 2024 Document type: Article Country of publication: United kingdom