Feedstock choice, pyrolysis temperature and type influence biochar characteristics: a comprehensive meta-data analysis review

Выбор сырья, температура и тип пиролиза влияют на характеристики биоугля: всеобъемлющий обзор с метаанализом данных
James A. Ippolito, Liqiang Cui, Claudia Kammann, N. Wrage, J. M. Estavillo, Teresa Fuertes‐Mendizábal, María Luz Cayuela, Gilbert C. Sigua, Jeff Novak, Kurt A. Spokas, Nils Borchard
2020-09-28

biochar characteristicscation exchange capacityfeedstock selectionpyrolysis temperaturespecific surface area
Abstract Various studies have established that feedstock choice, pyrolysis temperature, and pyrolysis type influence final biochar physicochemical characteristics. However, overarching analyses of pre-biochar creation choices and correlations to biochar characteristics are severely lacking. Thus, the objective of this work was to help researchers, biochar-stakeholders, and practitioners make more well-informed choices in terms of how these three major parameters influence the final biochar product. Utilizing approximately 5400 peer-reviewed journal articles and over 50,800 individual data points, herein we elucidate the selections that influence final biochar physical and chemical properties, total nutrient content, and perhaps more importantly tools one can use to predict biochar’s nutrient availability. Based on the large dataset collected, it appears that pyrolysis type (fast or slow) plays a minor role in biochar physico- (inorganic) chemical characteristics; few differences were evident between production styles. Pyrolysis temperature, however, affects biochar’s longevity, with pyrolysis temperatures > 500 °C generally leading to longer-term (i.e., > 1000 years) half-lives. Greater pyrolysis temperatures also led to biochars containing greater overall C and specific surface area (SSA), which could promote soil physico-chemical improvements. However, based on the collected data, it appears that feedstock selection has the largest influence on biochar properties. Specific surface area is greatest in wood-based biochars, which in combination with pyrolysis temperature could likely promote greater changes in soil physical characteristics over other feedstock-based biochars. Crop- and other grass-based biochars appear to have cation exchange capacities greater than other biochars, which in combination with pyrolysis temperature could potentially lead to longer-term changes in soil nutrient retention. The collected data also suggest that one can reasonably predict the availability of various biochar nutrients (e.g., N, P, K, Ca, Mg, Fe, and Cu) based on feedstock choice and total nutrient content. Results can be used to create designer biochars to help solve environmental issues and supply a variety of plant-available nutrients for crop growth.
1
Feedstock selection has the greatest influence on biochar properties: wood-based biochars show the highest specific surface area, while crop- and grass-based biochars generally have greater cation exchange capacity.
2
Higher pyrolysis temperatures increase biochar carbon content and specific surface area, potentially enhancing soil physicochemical properties.
3
Pyrolysis temperatures above 500 °C generally produce biochar with longer-term half-lives exceeding 1,000 years.
4
Pyrolysis type, whether fast or slow, has a minor influence on biochar physicochemical characteristics, with few differences between production styles.
5
The meta-analysis compiled approximately 5,400 peer-reviewed articles and more than 50,800 data points linking production choices to biochar properties.

Biochar produced from different feedstocks under varying pyrolysis temperatures and pyrolysis types

The effects of feedstock choice, pyrolysis temperature, and pyrolysis type on biochar physicochemical characteristics, nutrient content and availability, longevity, carbon content, specific surface area, and cation exchange capacity

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2020-09-28
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James A. Ippolito
Liqiang Cui
Claudia Kammann
N. Wrage
J. M. Estavillo
Teresa Fuertes‐Mendizábal
María Luz Cayuela
Gilbert C. Sigua
Jeff Novak
Kurt A. Spokas
Nils Borchard
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