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  • Hydrothermal Carbonization: Upgrading Waste Biomass to Char
    Hydrothermal carbonization (HTC) is a thermochemical conversion process that uses heat to convert wet biomass feedstocks to hydrochar HTC is performed in a reactor at temperatures ranging from 356 to 482°F, i e , 180 to 250°C, under autogenous (automatically generated) pressure, with feedstock residence time ranging from 0 5 to 8 hours [1,2]
  • Hydrothermal carbonization process: Fundamentals, main . . .
    The HTC process may also be applied to inorganic waste Iñiguez et al [ 59 ] studied the hydrothermal conditioning process on plastic waste derived from seawater The researchers prepared the plastic mixture and performed the process in the presence of salt water
  • Hydrothermal Carbonization process - HTCycle
    The economic benefits of the HTC process are clear: not only does the process allow for a clean, environmentally-safe disposal of biomass and mixed waste, but also produces biocoal that serves as fuels and recovers phosphorus, which can be used in fertilizers and the separation of heavy metals In fact, during the hydrothermal carbonization
  • Hydrothermal Carbonization - an overview | ScienceDirect Topics
    Hydrothermal carbonization (HTC) is an eco-friendly, suitable, and inexpensive method [178] Compared with the pyrolysis process, HTC has many advantages including no requirement for predrying, low carbonization temperature (180–350°C) and air pollution avoided by the dissolution of nitrogen oxides and sulfur oxides in water [179] In the
  • Hydrothermal Carbonization of Organic Waste and Biomass: A . . .
    The process exploits the HTC process water (the “liquor”), which is an inevitable HTC by-product, to generate biogas During the operation, the process water resulting from HTC feeds an AD plant to generate biogas through a series of bacterial and metabolic pathways [10, 13]
  • Hydrothermale Carbonisierung HTC - Helmholtz-Centre for . . . - UFZ
    HTC of various biomass matrices (sewage sludge, distiller’s grains, invasive aquatic plants, etc ) and characterization of all product streams Characterization, utilization and treatment of the HTC-process waters Wet-oxidation of HTC-suspensions Formation and fate of organic and inorganic pollutants during HTC
  • Process Waters from Hydrothermal Carbonization of Sludge . . .
    The dewatered ADSS used in the HTC treatment was characterized by a high aluminum- and iron- salts content that compromised the phosphate release in the HTC process waters, thus, the HTC process was followed by an acid leaching step in order to remove P from hydrochar: a concentration of about 2400 mg PO 4-P L −1 was reached in the process





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