PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
March 13, 2026Energies1 citationsOpen Access

Valorization of Textile Cotton Waste and Textile Sludge into High-Quality Torrefied Biofuel Pellets: Fuel Characteristics and Optimization

View Full Paper
IAIrfan Ahmad AnsariAZAsad A. ZaidiAMAbdul Hameed Memon

Key Points

  • The research aims to convert textile wastewater sludge and cotton waste into high-quality biofuels using torrefaction and pelletization methods.
  • Conditioned blended feedstocks to ~10% moisture and pelletized into 8 mm cylinders
  • Performed torrefaction at temperatures ranging from 200–240 °C for 30–90 minutes
  • Conducted proximate and ultimate analyses, calorific value measurements, and compressive strength testing
  • Used response surface methodology to optimize torrefaction parameters
  • The TCW-rich 20:80 blend achieved a calorific value of 3377 kcal kg−1 and maximum compressive strength of 14.9 N mm−2
  • Torrefaction at 200 °C for 60 min increased gross calorific value to 4083 kcal kg−1 with a high mass yield of 92%
  • Higher torrefaction temperatures (220–240 °C) raised GCV to 4362–4565 kcal kg−1 but reduced mass yield
  • Faster decomposition and higher residue levels were confirmed for sludge-rich blends by TGA–DTG analysis

Abstract

This study investigates the conversion of textile wastewater sludge (TWS) and textile cotton waste (TCW) into solid biofuels through pelletization and torrefaction, addressing the growing need for sustainable waste management and alternative fuels in the textile sector. Blended feedstocks were conditioned to ~10% moisture, pelletized into 8 mm cylinders, and thermally upgraded at 200–240 °C for 30–90 min. Proximate and ultimate analyses, calorific value measurements, compressive strength testing, bulk and true density assessment, and TGA–DTG were used to evaluate fuel properties, while response surface methodology (RSM) optimized torrefaction parameters. The TCW-rich 20:80 (TWS:TCW) blend with 5% starch exhibited the most favorable overall performance, achieving a calorific value of 3377 kcal kg−1, ash of 10.3%, bulk density of 554 kg m−3, and maximum compressive strength of 14.9 N mm−2. Torrefaction at 200 °C for 60 min increased the GCV to 4083 kcal kg−1 with a high mass yield of 92%, indicating mild thermal decomposition and good energy retention. Further Torrefaction at 220–240 °C increased GCV to 4362–4565 kcal kg−1, accompanied by expected mass-yield reductions due to increased devolatilization. TGA–DTG confirmed faster and cleaner decomposition for TCW-rich pellets and higher residues for sludge-rich blends. RSM indicated temperature as the dominant factor governing mass and energy yields. These findings demonstrate that optimized co-pelletization and mild-to-moderate torrefaction can effectively transform textile residues into energy-dense, mechanically stable biofuels suitable for industrial heat applications.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Ansari et al. (2026) studied this question.

synapsesocial.com/papers/69b3ab4c02a1e69014ccc118https://doi.org/10.3390/en19061401
Ask AI
Helpful
Bookmark
Share
View Full Paper