2013Unpublished venueRequires access

Influence of biochar incorporation on TDR-based soil water content measurements

K. K ameyama

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Abstract

Summary The incorporation of biochar (BC) into agricultural soil changes the soil’s physical properties, which leads to changes in the soil’s hydraulic properties, such as water retention and permeability, and alters the soil moisture environment in agricultural fields. To elucidate the effects of the incorporation of BC on the soil moisture environment, measurements of the soil water in biochar-amended agricultural fields are needed. Time domain reflectometry (TDR) is a widely used and established technique for the continuous measurement of the soil water content (SWC) in agricultural fields. However, TDR measurements are affected by the conductivity of soils. Biochar formed at higher pyrolysis temperatures is known to be very conductive. Therefore, we investigated the influence of the incorporation of BC on TDR-based SWC measurements. We examined calcaric dark red soil and the BC produced by pyrolysis of sugarcane bagasse at 400, 600 and 800 ◦ C. The apparent relative permittivity (� a ) of the BC (800 ◦ C)-amended soil was greater than that of the non-amended

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Summary The incorporation of biochar (BC) into agricultural soil changes the soil’s physical properties, which leads to changes in the soil’s hydraulic properties, such as water retention and permeability, and alters the soil moisture environment in agricultural fields. To elucidate the effects of the incorporation of BC on the soil moisture environment, measurements of the soil water in biochar-amended agricultural fields are needed. Time domain reflectometry (TDR) is a widely used and established technique for the continuous measurement of the soil water content (SWC) in agricultural fields. However, TDR measurements are affected by the conductivity of soils. Biochar formed at higher pyrolysis temperatures is known to be very conductive. Therefore, we investigated the influence of the incorporation of BC on TDR-based SWC measurements. We examined calcaric dark red soil and the BC produced by pyrolysis of sugarcane bagasse at 400, 600 and 800 ◦ C. The apparent relative permittivity (� a ) of the BC (800 ◦ C)-amended soil was greater than that of the non-amended

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Available abstract

Summary The incorporation of biochar (BC) into agricultural soil changes the soil’s physical properties, which leads to changes in the soil’s hydraulic properties, such as water retention and permeability, and alters the soil moisture environment in agricultural fields. To elucidate the effects of the incorporation of BC on the soil moisture environment, measurements of the soil water in biochar-amended agricultural fields are needed. Time domain reflectometry (TDR) is a widely used and established technique for the continuous measurement of the soil water content (SWC) in agricultural fields. However, TDR measurements are affected by the conductivity of soils. Biochar formed at higher pyrolysis temperatures is known to be very conductive. Therefore, we investigated the influence of the incorporation of BC on TDR-based SWC measurements. We examined calcaric dark red soil and the BC produced by pyrolysis of sugarcane bagasse at 400, 600 and 800 ◦ C. The apparent relative permittivity (� a ) of the BC (800 ◦ C)-amended soil was greater than that of the non-amended

Key concepts: Biochar, Soil water, Water content, Environmental science, Soil science, Reflectometry, Moisture, Hydraulic conductivity

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