2020Journal of Geophysical Research BiogeosciencesRequires access

Soil Greenhouse Gas Fluxes From Maize Production Under Different Soil Fertility Management Practices in East Africa

Joseph M. Macharia, David E. Pelster, Felix Kipchirchir Ngetich, Chris Allan Shisanya, Monicah Wanjiku Mucheru-Muna, Daniel Njiru Mugendi

Open publisher page 40 citations

Abstract

Abstract In sub‐Saharan Africa (SSA), few studies have quantified greenhouse gas (GHG) emissions following application of soil amendments, for development of accurate national GHG inventories. Therefore, this study quantified soil GHG emissions using static chambers for two maize cropping seasons (one full year) of four different soil amendments in the central highlands of Kenya. The four treatments were (i) animal manure, (ii) inorganic fertilizer, (iii) combined animal manure and inorganic fertilizer, and (iv) a no‐N control (no amendment) laid out in a randomized complete block design. Cumulative annual soil fluxes (February 2017 to February 2018) ranged from −1.03 ± 0.19 kg CH 4 ‐C ha −1 yr −1 from the manure inorganic fertilizer treatment to −0.09 ± 0.03 kg CH 4 ‐C ha −1 yr −1 from the manure treatment, 1,391 ± 74 kg CO 2 ‐C ha −1 yr −1 from the control treatment to 3,574 ± 113 kg CO 2 ‐C ha −1 yr −1 from the manure treatment, and 0.13 ± 0.08 to 1.22 ± 0.12 kg N 2 O‐N ha −1 yr −1 in the control and manure treatments, respectively. Animal manure amendment produced the highest cumulative CO 2 emissions ( P < 0.001), N 2 O emissions ( P < 0.001), and maize yields ( P = 0.002) but the lowest N 2 O yield‐scaled emission (YSE) (0.5 g N 2 O–N kg −1 grain yield). Manure combined with inorganic fertilizer had the highest cumulative CH 4 uptake ( P < 0.001) and N 2 O YSE (2.2 g N 2 O–N kg −1 grain yield). Our results indicate that while the use of animal manure may increase total GHG emissions, the concurrent increase in maize yields results in reduced yield‐scaled GHG emissions.

About this research paper

What this paper is about

Abstract In sub‐Saharan Africa (SSA), few studies have quantified greenhouse gas (GHG) emissions following application of soil amendments, for development of accurate national GHG inventories. Therefore, this study quantified soil GHG emissions using static chambers for two maize cropping seasons (one full year) of four different soil amendments in the central highlands of Kenya. The four treatments were (i) animal manure, (ii) inorganic fertilizer, (iii) combined animal manure and inorganic fertilizer, and (iv) a no‐N control (no amendment) laid out in a randomized complete block design. Cumulative annual soil fluxes (February 2017 to February 2018) ranged from −1.03 ± 0.19 kg CH 4 ‐C ha −1 yr −1 from the manure inorganic fertilizer treatment to −0.09 ± 0.03 kg CH 4 ‐C ha −1 yr −1 from the manure treatment, 1,391 ± 74 kg CO 2 ‐C ha −1 yr −1 from the control treatment to 3,574 ± 113 kg CO 2 ‐C ha −1 yr −1 from the manure treatment, and 0.13 ± 0.08 to 1.22 ± 0.12 kg N 2 O‐N ha −1 yr −1 in the control and manure treatments, respectively. Animal manure amendment produced the highest cumulative CO 2 emissions ( P < 0.001), N 2 O emissions ( P < 0.001), and maize yields ( P = 0.002) but the lowest N 2 O yield‐scaled emission (YSE) (0.5 g N 2 O–N kg −1 grain yield). Manure combined with inorganic fertilizer had the highest cumulative CH 4 uptake ( P < 0.001) and N 2 O YSE (2.2 g N 2 O–N kg −1 grain yield). Our results indicate that while the use of animal manure may increase total GHG emissions, the concurrent increase in maize yields results in reduced yield‐scaled GHG emissions.

Why it matters

OpenAlex reports 40 citations for this work. Citation counts describe recorded attention and do not establish research quality.

Key contribution

A contribution statement is not available in the OpenAlex record.

Method / approach

Method details are not available in the OpenAlex metadata.

Main findings

Findings are not separately available in the OpenAlex metadata.

Limitations

Limitations are not available in the OpenAlex metadata.

Applications

Application details are not available in the OpenAlex metadata.

Available abstract

Abstract In sub‐Saharan Africa (SSA), few studies have quantified greenhouse gas (GHG) emissions following application of soil amendments, for development of accurate national GHG inventories. Therefore, this study quantified soil GHG emissions using static chambers for two maize cropping seasons (one full year) of four different soil amendments in the central highlands of Kenya. The four treatments were (i) animal manure, (ii) inorganic fertilizer, (iii) combined animal manure and inorganic fertilizer, and (iv) a no‐N control (no amendment) laid out in a randomized complete block design. Cumulative annual soil fluxes (February 2017 to February 2018) ranged from −1.03 ± 0.19 kg CH 4 ‐C ha −1 yr −1 from the manure inorganic fertilizer treatment to −0.09 ± 0.03 kg CH 4 ‐C ha −1 yr −1 from the manure treatment, 1,391 ± 74 kg CO 2 ‐C ha −1 yr −1 from the control treatment to 3,574 ± 113 kg CO 2 ‐C ha −1 yr −1 from the manure treatment, and 0.13 ± 0.08 to 1.22 ± 0.12 kg N 2 O‐N ha −1 yr −1 in the control and manure treatments, respectively. Animal manure amendment produced the highest cumulative CO 2 emissions ( P < 0.001), N 2 O emissions ( P < 0.001), and maize yields ( P = 0.002) but the lowest N 2 O yield‐scaled emission (YSE) (0.5 g N 2 O–N kg −1 grain yield). Manure combined with inorganic fertilizer had the highest cumulative CH 4 uptake ( P < 0.001) and N 2 O YSE (2.2 g N 2 O–N kg −1 grain yield). Our results indicate that while the use of animal manure may increase total GHG emissions, the concurrent increase in maize yields results in reduced yield‐scaled GHG emissions.

Key concepts: Manure, Fertilizer, Amendment, Agronomy, Greenhouse gas, Environmental science, Manure management, Randomized block design

Related papers

Back to paper searchBrowse research topicsOriginal source
Soil Greenhouse Gas Fluxes From Maize Production Under Different Soil Fertility Management Practices in East Africa — Research Paper | ScholarLens