Microalgae based biofertilizer: A life cycle approach

被引:73
作者
Castro, Jackeline de Siqueira [1 ]
Calijuri, Maria Lucia [1 ]
Ferreira, Jessica [1 ]
Assemany, Paula Peixoto [2 ]
Ribeiro, Vinicius Jose [1 ]
机构
[1] Univ Fed Vicosa, Dept Civil Engn, Av Peter Henry Rolfs S-N,Campus Univ Fed Vicosa, BR-36570900 Vicosa, MG, Brazil
[2] Univ Fed Lavras, Dept Water Resources & Sanitat, Campus Univ, BR-37200900 Lavras, MG, Brazil
关键词
Effluent treatment; Algal biomass; High rate algal ponds; Biofertilizer; Nutrient recovery<bold>; </bold>; WASTE-WATER TREATMENT; ENVIRONMENTAL IMPACTS; PHOSPHORUS RECOVERY; BIOMASS PRODUCTION; FOULING CONTROL; LCA; PERFORMANCE; FERTILIZERS; REMOVAL; BIOFILM;
D O I
10.1016/j.scitotenv.2020.138138
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Waste, especially biomass in general, is a large reservoir of nutrients that can be recovered through different technologies and used to produce biofertilizers. In the present study, environmental impacts of the production of microalgae biomass-based phosphate biofertilizer compared to triple superphosphate through life-cycle assessment conducted in the Simapro (R) software were investigated. The functional unit of the analysis was 163 g of P for both fertilizers. Phosphorus was recovered from a meat processing industry effluent in a high-rate algal pond. Impacts related to the entire biofertilizer chain impacted mainly on climate changes (3.17 kg CO(2)eq). Microalgae biofertilizer had higher environmental impact than conventional fertilizer in all impact categories, highlighting climate change and terrestrial ecotoxicity. An ideal scenario was created considering that: all energy used comes from photovoltaic panels; in the separation step a physical method will be used, without energy expenditure (i.e. gravimetric sedimentation) and; biomass will be dried in a drying bed instead of the thermal drying. In this scenario, the impact of biofertilizer approached considerably those of triple superphosphate. When impacts of biomass cultivation and concentration stages were disregarded, drying step was of great relevance, contributing to increase biofertilizer impacts. More research is needed to optimize the algae production chain and determine the possibility of obtaining higher added value products more environmental attractive.<bold> </bold>
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页数:10
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