采用绿色吸收剂进行二氧化碳捕获和农业利用:沼气浆和生物质灰案例

Feihong Liang , Shihui Wei , Lu Xue , Shuiping Yan
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摘要

此前,通过实验验证了沼气浆对二氧化碳的一次性化学吸收过程具有能耗低、成本效益高以及在植物中固定二氧化碳的可行性等独特优势。然而,该技术也面临着一些挑战和限制,包括二氧化碳吸收率低、性能差等。为了提高这种创新型碳捕集、利用和封存(CCUS)技术的有效性和可靠性,本研究提出了一种新方法,通过将沼气浆与生物质灰作为绿色二氧化碳吸收剂混合,在不影响二氧化碳农业应用的前提下提高二氧化碳吸收性能。结果表明,当生物质灰分与沼气浆的固液质量比为 5:10 时,生物质灰分与沼气浆混合物(BA-BS)的二氧化碳负荷达到 936.7 ± 59.1 mmol/kg。此外,BA-BS 的 pH 值稳定在 6.9,符合植物栽培对根瘤菌 pH 值的要求。BA-BS 液相(即改良沼气浆(IBS))的二氧化碳吸收量最大,为 230.4 ± 3.5 mmol/L,比未经改良的沼气浆高出 126.8%。BA-BS 固相中的氮含量也达到最高值,为 4.24 ± 0.74 mg/g,从而扩大了生物质灰的农业利用。利用富含二氧化碳的混合沼气浆和生物质灰渣的最合理、最有效的方法是使用 IBA 作为番茄栽培的基肥,之后再辅以 IBS 以促进生长。这种最佳施肥方式可以大量利用 IBA 和 IBS 引入番茄栽培环境的二氧化碳。单个番茄的碳固定能力提高了 108.2%。因此,这项研究为沼气浆和生物质灰的高价值负碳化提供了一个可行的解决方案。
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Adopting green absorbent for CO2 capture and agricultural utilization: Biogas slurry and biomass ash case

Previously, the once-through CO2 chemical absorption process by biogas slurry was experimentally verified to offer the unique advantages like low energy consumption, cost-effectiveness, and feasibility of CO2 fixation in plants. However, this technology also faces some challenges and limitations, including a low CO2 absorption rate and performance. To improve the effectiveness and reliability of this innovative carbon capture, utilization, and storage (CCUS) technology, this study proposes a novel method to enhance the CO2 absorption performance without affecting agricultural applications of CO2 by mixing biogas slurry with biomass ash as the green CO2 absorbent. The results indicate that when the solid-liquid mass ratio of biomass ash to biogas slurry is 5:10, the CO2 loading of the biomass ash and biogas slurry mixture (BA-BS) reaches 936.7 ± 59.1 mmol/kg. Furthermore, the pH of the BA-BS remains stable at 6.9, meeting the rhizosphere pH requirements for plant cultivation. The CO2 absorption of the BA-BS liquid phase, referred to as improved biogas slurry (IBS), reaches its maximum at 230.4 ± 3.5 mmol/L, which is 126.8% higher than that of the unimproved biogas slurry. The nitrogen content in the BA-BS solid phase, calling improved biomass ash (IBA), also reaches its maximum at 4.24 ± 0.74 mg/g, thereby expanding the agricultural utilization of biomass ash. The most reasonable and effective way of utilizing CO2-rich mixed biogas slurry and biomass ash involves use IBA as the base fertilizer for tomato cultivation, supplemented later with IBS to promote growth. This optimal application allows for substantial utilization of CO2, introduced into the tomato cultivation environment by IBA and IBS. The carbon fixation of a single tomato has improved by 108.2%. This study thus provides a feasible solution for high-value negative carbonization of biogas slurry and biomass ash.

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