Bioenergy production from algae using dairy manure as a nutrient source: Life cycle energy and greenhouse gas emission analysis

被引:27
|
作者
Chowdhurya, Raja [1 ]
Freire, Fausto [2 ]
机构
[1] Indian Inst Technol, Dept Civil Engn, Roorkee 247667, Uttarakhand, India
[2] Univ Coimbra, Dept Mech Engn, ADAI IAETA, P-3030788 Coimbra, Portugal
关键词
Dairy manure; Algal bioenergy; Life cycle assessment (LCA); Energy demand; Greenhouse gas (GHG); ANAEROBIC CO-DIGESTION; MUNICIPAL SOLID-WASTE; BIODIESEL PRODUCTION; SEWAGE-SLUDGE; ENVIRONMENTAL IMPACTS; AGRICULTURAL LAND; BIOGAS PRODUCTION; FAST PYROLYSIS; CATTLE MANURE; MICROALGAE;
D O I
10.1016/j.apenergy.2015.05.045
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
This study estimated the potential of algal bioenergy production using nitrogen and phosphorus present in the dairy manure (produced in the US). State wise dairy manure production and energy mixes were used to estimate algal bioenergy production and associated life cycle nonrenewable primary energy demand and greenhouse gas emissions for the four scenarios. These scenarios were constructed using various combination of following processes (i) anaerobic digestion, (ii) algal biodiesel production using effluent from (i), (iii) pyrolysis, and (iv) enzymatic hydrolysis. Bioenergy production, nonrenewable primary energy demand and greenhouse gas emissions of each state were aggregated to estimate the total bioenergy production, nonrenewable primary energy requirement and greenhouse gas emissions for the US. Two different cases were simulated for each scenario, one without taking into account the nutrient values (N, P) of applied sludge generated from the bioenergy production (Case B) while in the other one, nutrient values of sludge were considered (Case A). For incorporation of nutrient values of sludge, system expansion approach was used. It was estimated that by using dairy manure, 0.56 billion GJ/yr bioenergy could be produced. Minimum "nonrenewable primary energy requirement (NRPER)" (GJ/GJ) [Total primary nonrenewable energy requirement/bioenergy produced] and GHG emissions (kg CO2 eq./GJ bioenergy produced) for the four scenarios (1-4) for case B were as follows (1) 0.37, 27 (2) 0.51, -30; (3) 0.55, 47 and (4) 0.70, 15 respectively. In case A, NRPER did not change as compared to case B. GHG emissions increased in case A scenarios as compared to case B scenarios. The increase in GHG emission was mostly due to incorporation of reference scenario (raw dairy manure was applied on the ground) and N2O emission from the sludge amended soil. (C) 2015 Elsevier Ltd. All rights reserved.
引用
收藏
页码:1112 / 1121
页数:10
相关论文
共 50 条
  • [21] Spatial disparity of life-cycle greenhouse gas emissions from corn straw-based bioenergy production in China
    Yang, Yang
    Liang, Sai
    Yang, Yi
    Xie, Guang Hui
    Zhao, Wei
    APPLIED ENERGY, 2022, 305
  • [22] Life cycle greenhouse gas emissions from geothermal electricity production
    Sullivan, J. L.
    Wang, M. Q.
    JOURNAL OF RENEWABLE AND SUSTAINABLE ENERGY, 2013, 5 (06)
  • [23] Life cycle assessment as a tool in optimizing energy consumption and greenhouse gas emission reductions in the production processes of motor fuels
    Rogowska, Delfina
    Syrek, Halina
    PRZEMYSL CHEMICZNY, 2011, 90 (06): : 1140 - 1144
  • [24] Life-cycle analysis of greenhouse gas emissions from renewable jet fuel production
    de Jong, Sierk
    Antonissen, Kay
    Hoefnagels, Ric
    Lonza, Laura
    Wang, Michael
    Faaij, Andre
    Junginger, Martin
    BIOTECHNOLOGY FOR BIOFUELS, 2017, 10
  • [25] Life-cycle analysis of greenhouse gas emissions from renewable jet fuel production
    Sierk de Jong
    Kay Antonissen
    Ric Hoefnagels
    Laura Lonza
    Michael Wang
    André Faaij
    Martin Junginger
    Biotechnology for Biofuels, 10
  • [26] Incorporating uncertainty analysis into life cycle estimates of greenhouse gas emissions from biomass production
    Johnson, David R.
    Willis, Henry H.
    Curtright, Aimee E.
    Samaras, Constantine
    Skone, Timothy
    BIOMASS & BIOENERGY, 2011, 35 (07): : 2619 - 2626
  • [27] 2D representation of life cycle greenhouse gas emission and life cycle cost of energy conversion for various energy resources
    Heetae Kim
    Claudio Tenreiro
    Tae Kyu Ahn
    Korean Journal of Chemical Engineering, 2013, 30 : 1882 - 1888
  • [28] 2D representation of life cycle greenhouse gas emission and life cycle cost of energy conversion for various energy resources
    Kim, Heetae
    Tenreiro, Claudio
    Ahn, Tae Kyu
    KOREAN JOURNAL OF CHEMICAL ENGINEERING, 2013, 30 (10) : 1882 - 1888
  • [29] Life Cycle Energy and Greenhouse Gas Analysis of a Large-Scale Vertically Integrated Organic Dairy in the United States
    Heller, Martin C.
    Keoleian, Gregory A.
    ENVIRONMENTAL SCIENCE & TECHNOLOGY, 2011, 45 (05) : 1903 - 1910
  • [30] Effect of production system and farming strategy on greenhouse gas emissions from commercial dairy farms in a life cycle approach
    Kristensen, Troels
    Mogensen, Lisbeth
    Knudsen, Marie Trydeman
    Hermansen, John E.
    LIVESTOCK SCIENCE, 2011, 140 (1-3) : 136 - 148