Biochar: production, characterization, and applications by Ok, Yŏng-sik PDF

By Ok, Yŏng-sik

ISBN-10: 1482242303

ISBN-13: 9781482242300

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Additional info for Biochar: production, characterization, and applications

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Industrial & Engineering Chemistry Research 49, 10125–10131. Saarnio S, Heimonen K, Kettunen R. (2013). Biochar addition indirectly affects N2O emissions via soil moisture and plant N uptake. Soil Biology and Biochemistry 58, 99–106. Seifritz W. (1993). Should we store carbon in charcoal? International Journal of Hydrogen Energy 18, 405–407. Sohi S, Lopez-Capel E, Krull E, Bol R. (2009). Biochar, climate change and soil: A review to guide future research. In CSIRO Land and Water Science Report.

In addition, further research findings revealed that biochar has an affinity for organic compounds and may sorb toxic by-products from the wastewater treatment process. Today, the biochar concept has a strong global context, as it is positioned strongly in areas such as climate change (carbon abatement), but intrinsically linked to renewable energy capture (biomass pyrolysis) and food production and land-use change (food and feed production), further extending to the enhancement of ­environmental quality (control of diffuse pollution) and management of organic wastes (stabilization and use), through management of soil nutrients.

Development of magnetic activated carbon from almond shells for trinitrophenol removal from water. Chemical Engineering Journal 172, 1111–1125. Mourant D, Wang Z, He M, et al. (2011). Mallee wood fast p ­ yrolysis: Effects of alkali and alkaline earth m ­ etallic ­species on the yield and composition of bio-oil. Fuel 90, 2915–2922. Mukherjee A, Zimmerman AR. (2013). Organic carbon and nutrient release from a range of laboratory-produced biochars and biochar–soil mixtures. Geoderma 193, 122–130.

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Biochar: production, characterization, and applications by Ok, Yŏng-sik

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