The impact of water hyacinth biochar on maize growth and soil properties: The influence of pyrolysis temperature

Ashenafei Gezahegn, Yihenew G. Selassie, Getachew Agegnehu, Solomon Addisu, Fekremariam Asargew Mihretie, Yudai Kohira, Mekuanint Lewoyehu, Shinjiro Sato
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Abstract

Introduction

Options for managing water hyacinths (WHs) include converting the biomass into biochar for soil amendment. However, less has been known about the impact of WH-based biochar developed in varying pyrolysis temperatures on plant growth and soil qualities.

Materials and Methods

A pot experiment was undertaken in a factorial combination of WH biochars (WHBs) developed at three temperatures (350°C, 550°C and 750°C) and two application rates (5 and 20 t ha−1), plus a control without biochar. Maize was grown as a test crop for 2 months under natural conditions.

Results

Our study showed that applying WHB developed between 350°C and 750°C at 20 t ha−1 increased maize shoot and root dry biomass by 47.7% to 17.6% and 78.4% to 54.1%, respectively. Nevertheless, raising the biochar pyrolysis temperature decreased maize growth, whereas increasing the application rate displayed a positive effect. The application of WHB generated at 350°C and 550°C at 20 t ha−1 resulted in significant improvements in soil total nitrogen (17.9% to 25%), cation exchange capacity (27.3% to 20.2%), and ammonium-nitrogen (60.7% to 59.6%), respectively, over the control. Additionally, applying WHB produced from 350°C to 750°C at 20 t ha−1 enhanced soil carbon by 38.5%–56.3%, compared to the control. Conversely, applying biochar produced at 750°C resulted in higher soil pH (6.3 ± 0.103), electrical conductivity (0.23 ± 0.01 dS m−1) and available phosphorus (21.8 ± 2.53 mg kg−1).

Conclusion

WHBs developed at temperatures of 350°C and 550°C with an application rate of 20 t ha−1 were found to be optimal for growing maize and improving soil characteristics. Our study concludes that pyrolysis temperature significantly governs the effectiveness of biochar produced from a specific biomass source.

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布袋莲生物炭对玉米生长和土壤性质的影响热解温度的影响
导言:管理布袋莲(WHs)的方法包括将其生物质转化为生物炭用于土壤改良。然而,人们对不同热解温度下开发的水葫芦生物炭对植物生长和土壤质量的影响知之甚少。 材料与方法 盆栽实验采用了三种温度(350°C、550°C 和 750°C)和两种施用量(5 吨/公顷和 20 吨/公顷)的 WH 生物炭(WHBs)的因子组合,以及不含生物炭的对照。玉米作为试验作物在自然条件下种植了 2 个月。 结果 我们的研究表明,以 20 吨/公顷的速度在 350°C 和 750°C 之间施用 WHB,玉米嫩枝和根的干生物量分别增加了 47.7% 至 17.6%,以及 78.4% 至 54.1%。然而,提高生物炭热解温度会降低玉米的生长,而提高施用量则会产生积极影响。施用 350°C 和 550°C 温度下产生的生物炭 20 吨/公顷,土壤全氮(17.9% 至 25%)、阳离子交换容量(27.3% 至 20.2%)和铵态氮(60.7% 至 59.6%)分别比对照有显著提高。此外,与对照组相比,施用 350°C 至 750°C 温度下生产的 20 吨/公顷的 WHB 可使土壤碳含量增加 38.5%-56.3%。相反,施用 750°C 生产的生物炭可提高土壤 pH 值(6.3 ± 0.103)、电导率(0.23 ± 0.01 dS m-1)和可利用磷(21.8 ± 2.53 mg kg-1)。 结论 在 350°C 和 550°C 温度下开发的 WHBs(施用量为 20 吨/公顷)最适合玉米生长和改善土壤特性。我们的研究得出结论,热解温度在很大程度上决定了从特定生物质源生产的生物炭的效果。
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