利用中空纤维膜接触器在氨氮回收过程中最大限度地提高液肥浓度

IF 4.7 Q1 ENGINEERING, CHEMICAL
Musie Welldegerima Atsbha, Oded Nir
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引用次数: 0

摘要

中空纤维膜接触器(HFMC)可以低能耗、低占地面积地从废水中回收高纯铵(液)肥。先前的研究考察了诸如pH值、初始氨浓度、流速、流配置和酸剥离溶液等因素。然而,通过膜的水通量,影响酸提过程中的%N,仍然是生产商业级液肥的关键障碍。本研究通过提高进料侧盐度来降低蒸汽压,从而减少不希望的水通量到酸侧,测试了%N的增强。测试了代表沸石再生溶液的两种盐度水平(2 M和5 M NaCl)。在5 M NaCl条件下,水通量为零,在两个循环中产生12%的N (NH4+),这对于该技术来说是非常高的。相反,2 M NaCl允许水通量,只有9% N。在第三个循环中,5 M NaCl进一步将%N增加到~ 14%,这是HFMC前所未有的结果。当NaCl浓度为5 m时,水通量为负(-0.031 L/m²·h),当NaCl浓度为2 m时,水通量为正(0.015 L/m²·h),表明水流正向或反向流动。氨的去除效率和传递系数(K)保持稳定。此外,膜防止离子交叉污染,生产高纯度的液体肥料。由于溶液可重复使用,在较高盐度下操作,如在含氨再生溶液中操作,在经济上是可行的。这种方法优化了高浓缩液体肥料生产的饲料性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Maximizing liquid fertilizer concentration during ammoniacal nitrogen recovery using hollow fiber membrane contactors

Maximizing liquid fertilizer concentration during ammoniacal nitrogen recovery using hollow fiber membrane contactors
Hollow fiber membrane contactors (HFMC) can recover high-purity ammonium (liquid) fertilizer from wastewater with low energy and area footprint. Previous studies examined factors such as pH, initial ammonia concentration, flow rate, stream configuration, and acid-stripping solution. However, water flux through the membrane, impacting %N in acid stripping, remains a key barrier to producing commercial-grade liquid fertilizer. This study tested %N enhancement by increasing feed-side salinity to reduce vapor pressure, thereby reducing undesired water flux to the acid side. Two salinity levels (2 M and 5 M NaCl) representing zeolite regeneration solutions were tested. With 5 M NaCl, water flux was nullified, yielding 12 %N (NH4+) over two cycles, considered very high for this technology. In contrast, 2 M NaCl allowed water flux, achieving only 9 %N. In a third cycle, 5 M NaCl further increased %N to ∼14 %, an unprecedented result for HFMC. Water flux was negative (-0.031 L/m²·h) with 5 M and positive (0.015 L/m²·h) with 2 M NaCl, indicating reverse or forward flow. Ammonia removal efficiency and transfer coefficient (K) remained stable. Furthermore, the membrane prevented ion cross-contamination, producing high-purity liquid fertilizer. Operating at higher salinity, as in ammonia-laden regeneration solutions, may be economically feasible due to solution reusability. This approach optimizes feed properties for highly concentrated liquid fertilizer production.
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