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A Food-Energy-Water Nexus approach for land use optimization Полный текст
2019
Nie, Yaling | Avraamidou, Styliani | Xiao Xin, | Pistikopoulos, Efstratios N. | Li, Jie | Zeng, Yujiao | Song, Fei | Yu, Jie | Zhu, Min
Allocation and management of agricultural land is of emergent concern due to land scarcity, diminishing supply of energy and water, and the increasing demand of food globally. To achieve social, economic and environmental goals in a specific agricultural land area, people and society must make decisions subject to the demand and supply of food, energy and water (FEW). Interdependence among these three elements, the Food-Energy-Water Nexus (FEW-N), requires that they be addressed concertedly. Despite global efforts on data, models and techniques, studies navigating the multi-faceted FEW-N space, identifying opportunities for synergistic benefits, and exploring interactions and trade-offs in agricultural land use system are still limited. Taking an experimental station in China as a model system, we present the foundations of a systematic engineering framework and quantitative decision-making tools for the trade-off analysis and optimization of stressed interconnected FEW-N networks. The framework combines data analytics and mixed-integer nonlinear modeling and optimization methods establishing the interdependencies and potentially competing interests among the FEW elements in the system, along with policy, sustainability, and feedback from various stakeholders. A multi-objective optimization strategy is followed for the trade-off analysis empowered by the introduction of composite FEW-N metrics as means to facilitate decision-making and compare alternative process and technological options. We found the framework works effectively to balance multiple objectives and benchmark the competitions for systematic decisions. The optimal solutions tend to promote the food production with reduced consumption of water and energy, and have a robust performance with alternative pathways under different climate scenarios.
Показать больше [+] Меньше [-]Agricultural Intensification: Combating Food/Water Security Challenges Using Remote Sensing and GIS Полный текст
2017
sudhanshu panda | chandrashekhar biradar | mahesh rao
This special issue aims to provide a knowledge base that is focused on geospatial mapping approaches for a better understanding of spatiotemporal dynamics of agricultural intensification from food/water security standpoints. This issue is of special importance to researchers engaged in applications of geospatial technologies in various agricultural science and engineering disciplines including agronomy, hydrology, geography, climatology, computer science, and engineering | Mahesh Rao, Chandrashekhar Biradar, Sudhanshu Panda. (1/1/2017). Agricultural Intensification: Combating Food/Water Security Challenges Using Remote Sensing and GIS
Показать больше [+] Меньше [-]Modeling the Agricultural Water–Energy–Food Nexus in the Indus River Basin, Pakistan Полный текст
2016
yang y. c. ethan | http://orcid.org/0000-0002-8266-0488 ringler claudia | brown casey | ringler claudia | http://orcid.org/0000-0003-4553-7867 mondal alam | mondal md. hossain alam
CGIAR Research Program on Policies, Institutions, and Markets (PIM) | Yang Y. C. Ethan et al., 'Modeling the Agricultural Water–Energy–Food Nexus in the Indus River Basin, Pakistan', Journal of Water Resources Planning and Management 142, IFPRI, 2016
Показать больше [+] Меньше [-]Physical properties of foods and effect of water on them, 5: Rheology and food engineering
2009
Kumagai, H.(Kyoritsu Women's Univ., Tokyo (Japan)) | Kumagai, H.
Subcritical Water Extraction of Bioactive Compounds from Plants and Algae: Applications in Pharmaceutical and Food Ingredients Полный текст
2016
Zakaria, Siti Maisurah | Kamal, Siti Mazlina Mustapa
Plants and algae are the main sources of natural bioactive compounds used in the food and pharmaceutical industries. It is very important to achieve an efficient and safe technique to recover bioactive compounds while maintaining their quality and properties. Subcritical water extraction is the most promising engineering approach that offers an environmentally friendly technique for extracting various compounds from plants and algae. Application of pressurized water and high temperature in subcritical phase is able to modify the dielectric constant and polarity of the solvent which then contributes to a better extraction process. The technique improves the mass transfer rate and preserves the biological potency of the extracts. This article reviews current studies on the extraction of bioactive compounds from various species of plants and algae using the subcritical water technique and discusses its effects and benefits for the food and pharmaceutical industries.
Показать больше [+] Меньше [-]Integrating legacy soil phosphorus into sustainable nutrient management strategies for future food, bioenergy and water security Полный текст
2016
Rowe, Helen | Withers, Paul J. A. | Baas, Peter | Chan, Neng Iong | Doody, Donnacha | Holiman, Jeff | Jacobs, Brent | Li, Haigang | MacDonald, Graham K. | McDowell, Richard | Sharpley, Andrew N. | Shen, Jianbo | Taheri, Wendy | Wallenstein, Matthew | Weintraub, Michael N.
Legacy phosphorus (P) that has accumulated in soils from past inputs of fertilizers and manures is a large secondary global source of P that could substitute manufactured fertilizers, help preserve critical reserves of finite phosphate rock to ensure future food and bioenergy supply, and gradually improve water quality. We explore the issues and management options to better utilize legacy soil P and conclude that it represents a valuable and largely accessible P resource. The future value and period over which legacy soil P can be accessed depends on the amount present and its distribution, its availability to crops and rates of drawdown determined by the cropping system. Full exploitation of legacy P requires a transition to a more holistic system approach to nutrient management based on technological advances in precision farming, plant breeding and microbial engineering together with a greater reliance on recovered and recycled P. We propose the term ‘agro-engineering’ to encompass this integrated approach. Smaller targeted applications of fertilizer P may still be needed to optimize crop yields where legacy soil P cannot fully meet crop demands. Farm profitability margins, the need to recycle animal manures and the extent of local eutrophication problems will dictate when, where and how quickly legacy P is best exploited. Based on our analysis, we outline the stages and drivers in a transition to the full utilization of legacy soil P as part of more sustainable regional and global nutrient management.
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