Phosphorus removal from livestock effluents: recent technologies and new perspectives on low-cost strategies

被引:0
作者
Sara Zangarini
Tommy Pepè Sciarria
Fulvia Tambone
Fabrizio Adani
机构
[1] Università degli Studi di Milano,Gruppo Ricicla, Dipartimento di Scienze Agrarie e Ambientali
来源
Environmental Science and Pollution Research | 2020年 / 27卷
关键词
Phosphorous recovery; Struvite; Livestock treatment; By-product reuse;
D O I
暂无
中图分类号
学科分类号
摘要
Phosphorus is an essential element in the food production chain, even though it is a non-renewable and limited natural resource, which is going to run out soon. However, it is also a pollutant if massively introduced into soil and water ecosystems. This study focuses on the current alternative low-cost technologies for phosphorus recovery from livestock effluents. Recovering phosphorus from these wastewaters is considered a big challenge due to the high phosphorus concentration (between 478 and 1756 mg L−1) and solids content (> 2–6% of total solids). In particular, the methods discussed in this study are (i) magnesium-based crystallization (struvite synthesis), (ii) calcium-based crystallization, (iii) electrocoagulation and (iv) biochar production, which differ among them for some advantages and disadvantages. According to the data collected, struvite crystallization achieves the highest phosphorus removal (> 95%), even when combined with the use of seawater bittern (a by-product of sea salt processing) instead of magnesium chloride pure salt as the magnesium source. Moreover, the crystallizer technology used for struvite precipitation has already been tested in wastewater treatment plants, and data reported in this review showed the feasibility of this technology for use with high total solids (> 5%) livestock manure. Furthermore, economic and energetic analyses here reported show that struvite crystallization is the most practicable among the low-cost phosphorus recovery technologies for treating livestock effluents.
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页码:5730 / 5743
页数:13
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  • [1] Angst TE(2013)Establishing release dynamics for plant nutrients from biochar GCB Bioenergy 5 221-226
  • [2] Sohi SP(2011)A brief history of phosphorus: from the philosopher’s stone to nutrient recovery and reuse Chemosphere 84 737-746
  • [3] Ashley K(2014)Influence of operating parameters on phosphate removal from water by electrocoagulation using aluminum electrodes Sep Purif Technol 123 124-129
  • [4] Cordell D(2019)Phosphorous in the environment: characteristics with distribution and effects, removal mechanisms, treatment technologies, and factors affecting recovery as minerals in natural and engineered systems Environ Sci Pollut Res 26 20183-20207
  • [5] Mavinic D(2013)Recycling phosphorus by fast pyrolysis of pig manure: concentration and extraction of phosphorus combined with formation of value-added pyrolysis products Biomass Bioenergy 49 171-180
  • [6] Attour A(2015)Pattern of pore water nutrients in planted and non-planted soilless substrates as affected by the addition of biochars from wood gasification Biol Fertil Soils 51 625-635
  • [7] Touati M(2012)Treatment of water loaded with orthophosphate by electrocoagulation Procedia Eng 33 155-162
  • [8] Tlili M(2019)Nutrient removal from digested swine wastewater by combining ammonia stripping with struvite precipitation Environ Sci Pollut Res 26 6725-6734
  • [9] Ben Amor M(2015)Struvite precipitation as a technology to be integrated in a manure anaerobic digestion treatment plant – removal efficiency, crystal characterization and agricultural assessment J Chem Technol Biotechnol 90 1135-1143
  • [10] Lapicque F(2018)Advance research in textile engineering electrocoagulation followed by ion exchange or membrane separation techniques for recycle of textile wastewater Adv Res Text Eng 3 1024-1740