Erratum to: Life cycle assessment of integrated seawater agriculture in the Arabian (Persian) Gulf as a potential food and aviation biofuel resource
暂无分享,去创建一个
Sgouris Sgouridis | Brian Warshay | J. Jed Brown | S. Sgouridis | Brian Warshay | J. J. Brown | J. J. Brown
[1] Bin Song,et al. LIFE-CYCLE ASSESSMENT OF FLASH PYROLYSIS OF WOOD WASTE , 2010 .
[2] Robert Bailis,et al. Environmental and social implications of integrated seawater agriculture systems producing Salicornia bigelovii for biofuel , 2012 .
[3] C. Howe,et al. Life-Cycle Assessment of Potential Algal Biodiesel Production in the United Kingdom: A Comparison of Raceways and Air-Lift Tubular Bioreactors , 2010 .
[4] Zsófia Kádár,et al. Chemical characterization and hydrothermal pretreatment of Salicornia bigelovii straw for enhanced enzymatic hydrolysis and bioethanol potential. , 2014, Bioresource technology.
[5] Ryan Michael Swanson. Techno-economic analysis of biomass-to-liquids production based on gasification☆ , 2010 .
[6] Pinakeswar Mahanta,et al. Thermodynamic optimization of biomass gasification for decentralized power generation and Fischer–Tropsch synthesis , 2010 .
[7] Edward P. Glenn,et al. Halophytes for the treatment of saline aquaculture effluent , 1999 .
[8] Robert I. Lonard,et al. The Biological Flora of Coastal Dunes and Wetlands: Salicornia bigelovii J. Torrey , 2012 .
[9] L. M. Juarez,et al. Operating costs and health management strategies in shrimp hatcheries , 2004 .
[10] T. Dittmar,et al. Organic carbon dynamics in mangrove ecosystems : a review , 2008 .
[11] Jack J. Middelburg,et al. Major role of marine vegetation on the oceanic carbon cycle , 2004 .
[12] Zhenhong Yuan,et al. Bio-syngas production from biomass catalytic gasification , 2007 .
[13] Tadeusz W Patzek,et al. Ethanol Production Using Corn, Switchgrass and Wood; Biodiesel Production Using Soybean , 2008 .
[14] Edward P. Glenn,et al. Seawater irrigation of halophytes for animal feed. , 1995 .
[15] U. Sonesson,et al. Not all salmon are created equal: life cycle assessment (LCA) of global salmon farming systems. , 2009, Environmental science & technology.
[16] Edwin Corporan,et al. Certification of alternative aviation fuels and blend components , 2013 .
[17] Edward P. Glenn,et al. Potential for carbon sequestration in the drylands , 1993 .
[18] F. Blasco,et al. Mangroves of the United Arab Emirates: ecotypic diversity in cuticular waxes at the bioclimatic extreme , 1999 .
[19] David R. Shonnard,et al. Handbook of Bioenergy Crop Plants , 2012 .
[20] Edward P. Glenn,et al. Water requirements for cultivatingSalicornia bigeloviiTorr. with seawater on sand in a coastal desert environment , 1997 .
[21] E. Eding,et al. Analysis of nutrient flows in integrated intensive aquaculture systems , 2005 .
[22] Edwin Corporan,et al. Hydroprocessed Renewable Jet Fuel Evaluation, Performance, and Emissions in a T63 Turbine Engine , 2012 .
[23] Sgouris Sgouridis,et al. A Land Suitability Study for the Sustainable Cultivation of the Halophyte Salicornia bigelovii: The Case of Abu Dhabi, UAE , 2013 .
[24] David G. Masters,et al. Biosaline agriculture for forage and livestock production , 2007 .
[25] Yasunori Abe,et al. Sustainable Bio-Derived Synthetic Paraffinic Kerosene (Bio- SPK) Jet Fuel Flights and Engine Tests Program Results , 2009 .
[26] D. Cahoon,et al. Global carbon sequestration in tidal, saline wetland soils , 2003 .
[27] M. N. Kutty,et al. Influence of salinity and temperature on the oxygen consumption in young juveniles of the Indian prawn Penaeus indicus , 1971, Marine Biology.
[28] Edward P. Glenn,et al. Potential for the improvement of Salicornia bigelovii through selective breeding. , 2010 .
[29] J. O'leary,et al. Growth and Physiology of Salicornia bigelovii Torr. at Suboptimal Salinity , 1995, International Journal of Plant Sciences.
[30] Ibrahim E. H. Belal,et al. Replacement of Fish Meal with Salicornia Meal in Feeds for Nile Tilapia Oreochromis niloticus , 1999 .
[31] José Potting,et al. Environmental comparison of intensive and integrated agriculture–aquaculture systems for striped catfish production in the Mekong Delta, Vietnam, based on two existing case studies using life cycle assessment , 2012 .
[32] Edward P. Glenn,et al. Salt Tolerance and Crop Potential of Halophytes , 1999 .
[33] Manuel de J. Acosta Ruiz,et al. Primer registro de la utilizacion de harinas de Salicornia bigelovii y Scomber japonicus en dietas practicas para el cultivo super intensivo de camaron Litopenaeus stylirostris , 2011 .
[34] R. Kuehl,et al. Salicornia bigelovii Torr.: An Oilseed Halophyte for Seawater Irrigation , 1991, Science.
[35] Wenting Sun,et al. Life Cycle Assessment of Indoor Recirculating Shrimp Aquaculture System , 2009 .
[36] Sgouris Sgouridis,et al. Aviation industry’s quest for a sustainable fuel: considerations of scale and modal opportunity carbon benefit , 2011 .
[37] Rafael Arantes,et al. The impact of oxygen consumption by the shrimp Litopenaeus vannamei according to body weight, temperature, salinity and stocking density on pond aeration: a simulation , 2011 .
[38] Hans-Jürgen Dr. Klüppel,et al. The Revision of ISO Standards 14040-3 - ISO 14040: Environmental management Life cycle assessment Principles and framework - ISO 14044: Environmental management Life cycle assessment Requirements and guidelines , 2005 .
[39] J. Grönroos,et al. Life cycle assessment of Finnish cultivated rainbow trout , 2006 .
[40] Manuel de J. Acosta-Ruiz,et al. Primer registro de la utilización de harinas de Salicornia bigelovii y Scomber japonicus en dietas prácticas para el cultivo súper-intensivo de camarón Litopenaeus stylirostris , 2011 .
[41] S. Grattan,et al. Feasibility of irrigating pickleweed (Salicornia bigelovii. Torr) with hyper-saline drainage water. , 2008, Journal of environmental quality.
[42] C. Webster,et al. Tilapia : biology, culture, and nutrition , 2006 .
[43] A. Faaij,et al. Fischer–Tropsch diesel production in a well-to-wheel perspective: a carbon, energy flow and cost analysis , 2009 .
[44] Edward P. Glenn,et al. Growth performance of lambs fed mixed diets containing halophyte ingredients , 1996 .
[45] Mette Hedegaard Thomsen,et al. Halophytes for the Production of Liquid Biofuels , 2014 .
[46] David D. Hsu,et al. Life cycle assessment of gasoline and diesel produced via fast pyrolysis and hydroprocessing , 2011 .
[47] Edward P. Glenn,et al. IRRIGATING CROPS WITH SEAWATER , 1998 .
[48] Tim Edwards,et al. Advanced aviation fuels : a look ahead via a historical perspective , 2001 .
[49] Giovanni Lemos de Mello,et al. Acute toxicity of pyrazosulfuron-ethyl and permethrin to juvenile Litopenaeus vannamei , 2011 .
[50] R. J. Frye,et al. Decomposition of seawater-irrigated halophytes: implications for potential carbon storage , 1998, Plant and Soil.
[51] D. Iribarren,et al. LIFE CYCLE ASSESSMENT OF TRANSPORTATION FUELS FROM BIOMASS PYROLYSIS , 2012 .
[52] Xiangping Zhang,et al. Concentrating-solar biomass gasification process for a 3rd generation biofuel. , 2009, Environmental science & technology.
[53] Arturo Ruiz-Luna,et al. Technical, economics and environmental analysis of semi-intensive shrimp (Litopenaeus vannamei) farming in Sonora, Sinaloa and Nayarit states, at the east coast of the Gulf of California, México , 2011 .
[54] T. J. Smith,et al. Mangrove production and carbon sinks: A revision of global budget estimates , 2008 .
[55] Simon Shackley,et al. Pyrolysis biochar systems for recovering biodegradable materials: A life cycle carbon assessment. , 2012, Waste management.
[56] Robert J. Orth,et al. The Charisma of Coastal Ecosystems: Addressing the Imbalance , 2008 .
[57] Sgouris Sgouridis,et al. Characterization of the Chemical Composition of the Halophyte Salicornia bigelovii under Cultivation , 2014 .