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Water Implications of Biofuels Production in the United States

Water Implications of Biofuels Production in the United States
Author: National Research Council
Publisher: National Academies Press
Total Pages: 86
Release: 2008-01-09
Genre: Science
ISBN: 0309185653

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National interests in greater energy independence, concurrent with favorable market forces, have driven increased production of corn-based ethanol in the United States and research into the next generation of biofuels. The trend is changing the national agricultural landscape and has raised concerns about potential impacts on the nation's water resources. To help illuminate these issues, the National Research Council held a colloquium on July 12, 2007 in Washington, DC. Water Implications of Biofuels Production in the United States, based in part on discussions at the colloquium, concludes that if projected future increases in use of corn for ethanol production do occur, the increase in harm to water quality could be considerable from the increases in fertilizer use, pesticide use, and soil erosion associated with growing crops such as corn. Water supply problems could also develop, both from the water needed to grow biofuels crops and water used at ethanol processing plants, especially in regions where water supplies are already overdrawn. The production of "cellulosic ethanol," derived from fibrous material such as wheat straw, native grasses, and forest trimmings is expected to have less water quality impact but cannot yet be produced on a commerical scale. To move toward a goal of reducing water impacts of biofuels, a policy bridge will likely be needed to encourage growth of new technologies, best agricultural practies, and the development of traditional and cellulosic crops that require less water and fertilizer and are optimized for fuel production.


Water Implications of Biofuels Production in the United States

Water Implications of Biofuels Production in the United States
Author: Committee on Water Implications of Biofuels Production in the United States
Publisher:
Total Pages: 88
Release: 2008-01-09
Genre:
ISBN: 9780309383943

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National interests in greater energy independence, concurrent with favorable market forces, have driven increased production of corn-based ethanol in the United States and research into the next generation of biofuels. The trend is changing the national agricultural landscape and has raised concerns about potential impacts on the nation's water resources. To help illuminate these issues, the National Research Council held a colloquium on July 12, 2007 in Washington, DC. "Water Implications of Biofuels Production in the United States," based in part on discussions at the colloquium, concludes that if projected future increases in use of corn for ethanol production do occur, the increase in harm to water quality could be considerable from the increases in fertilizer use, pesticide use, and soil erosion associated with growing crops such as corn. Water supply problems could also develop, both from the water needed to grow biofuels crops and water used at ethanol processing plants, especially in regions where water supplies are already overdrawn. The production of "cellulosic ethanol," derived from fibrous material such as wheat straw, native grasses, and forest trimmings is expected to have less water quality impact but cannot yet be produced on a commerical scale. To move toward a goal of reducing water impacts of biofuels, a policy bridge will likely be needed to encourage growth of new technologies, best agricultural practies, and the development of traditional and cellulosic crops that require less water and fertilizer and are optimized for fuel production.


The Agricultural Water Use Impacts of Biofuel Cultivation in the United States, and of California's Future Transportation Fuels

The Agricultural Water Use Impacts of Biofuel Cultivation in the United States, and of California's Future Transportation Fuels
Author: Jacob Everett Teter
Publisher:
Total Pages:
Release: 2015
Genre:
ISBN: 9781339542249

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Interdependencies between water and energy resources are emerging as one of the core concerns of resource management. Integrating a successful transition to low-carbon transportation technologies together with effective water resource management requires an understanding of regionally appropriate water-energy nexus impacts. This thesis seeks to further the understanding of the water use impacts of transport energy supply chains. In the first chapter, the development of a new model that can be used to estimate crop-water balances and irrigation water use across large geographic scopes is described. The model developed here, CropWatR, can be used to estimate annual and seasonal water flows between the soil, crops (or other non-forested landscapes), and the atmosphere at a daily time-step, and includes irrigation scheduling. It is made available on github and written in the R open-source language, which will be useful to other researchers in the future. In chapter two, the CropWatR model is applied to outputs of an integrated agriculture-energy-economic model designed to offer insights into the potential greenhouse gas (GHG) emissions, fuel use, and economic impacts of biofuel production incentivized by selected policy instruments in the United States. The regional and national crop-water balances and potential trade-offs in water resource consumption and availability are compared across two biofuel policy scenarios, including the current federal legislation (the Renewable Fuels Standard), a hypothetical national extension of a policy similar to California's Low Carbon Fuel Standard (LCFS), and a no-policy counterfactual. Regional hotspots are identified where policies promoting domestic biofuels production might lead to decreased water resource availability. The third chapter focuses on the water use of all major energy supply chains providing energy for transport demand in California. The water use for in- and out-of-state oil and natural gas production, biofuel feedstocks cultivation, and electricity generation were characterized based on primary data sources within the state, and literature on the water footprint of energy production and transformation. This inventory of current water use intensity is combined with an energy-economic optimization model that projects energy pathways under various climate and energy policies (including California's 2050 GHG reduction target, Renewable Portfolio Standards, and the LCFS, inter alia) to project the water use implications of scenarios given California's climate, energy, and water policy. Chapters two and three provide case studies illustrating a lesson has been increasingly recognized in the literature and among policy makers: that effective resource management requires an integrated approach to understand the potential tradeoffs. Policy designs using integrated approach can maximize the benefits and can minimize unintended consequences.


Energy-Water Nexus

Energy-Water Nexus
Author: Anu Mittal
Publisher: DIANE Publishing
Total Pages: 54
Release: 2010-10
Genre: Science
ISBN: 1437926266

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In response to concerns about the nation¿s energy dependence on imported oil, and climate change, the fed. gov¿t. has encouraged the use of biofuels. Water plays a crucial role in all stages of biofuel production -- from cultivation of feedstock through its conversion into biofuel. As demand for water from various sectors increases and places additional stress on already constrained supplies, the effects of expanded biofuel production must be considered. This report examined: (1) water resource effects of biofuel production in the U.S.; (2) agr. conservation practices and technological innovations that could address these effects and any barriers to their adoption; and (3) research needs regarding the effects of water resources on biofuel production.


Sustainable Development of Algal Biofuels in the United States

Sustainable Development of Algal Biofuels in the United States
Author: National Research Council
Publisher: National Academies Press
Total Pages: 247
Release: 2013-01-18
Genre: Science
ISBN: 0309260329

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Biofuels made from algae are gaining attention as a domestic source of renewable fuel. However, with current technologies, scaling up production of algal biofuels to meet even 5 percent of U.S. transportation fuel needs could create unsustainable demands for energy, water, and nutrient resources. Continued research and development could yield innovations to address these challenges, but determining if algal biofuel is a viable fuel alternative will involve comparing the environmental, economic and social impacts of algal biofuel production and use to those associated with petroleum-based fuels and other fuel sources. Sustainable Development of Algal Biofuels was produced at the request of the U.S. Department of Energy.


Renewable Fuel Standard

Renewable Fuel Standard
Author: National Research Council
Publisher: National Academies Press
Total Pages: 416
Release: 2012-01-29
Genre: Technology & Engineering
ISBN: 0309187516

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In the United States, we have come to depend on plentiful and inexpensive energy to support our economy and lifestyles. In recent years, many questions have been raised regarding the sustainability of our current pattern of high consumption of nonrenewable energy and its environmental consequences. Further, because the United States imports about 55 percent of the nation's consumption of crude oil, there are additional concerns about the security of supply. Hence, efforts are being made to find alternatives to our current pathway, including greater energy efficiency and use of energy sources that could lower greenhouse gas (GHG) emissions such as nuclear and renewable sources, including solar, wind, geothermal, and biofuels. The United States has a long history with biofuels and the nation is on a course charted to achieve a substantial increase in biofuels. Renewable Fuel Standard evaluates the economic and environmental consequences of increasing biofuels production as a result of Renewable Fuels Standard, as amended by EISA (RFS2). The report describes biofuels produced in 2010 and those projected to be produced and consumed by 2022, reviews model projections and other estimates of the relative impact on the prices of land, and discusses the potential environmental harm and benefits of biofuels production and the barriers to achieving the RFS2 consumption mandate. Policy makers, investors, leaders in the transportation sector, and others with concerns for the environment, economy, and energy security can rely on the recommendations provided in this report.


Life-Cycle Water Impacts of U.S. Transportation Fuels

Life-Cycle Water Impacts of U.S. Transportation Fuels
Author: Corinne Donahue Scown
Publisher:
Total Pages: 554
Release: 2010
Genre:
ISBN:

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The connection between energy use and water scarcity is not well understood. The production of energy requires water and the supply of water requires energy. Water already plays a major role in stationary energy production; thermoelectric power generation is responsible for nearly half of total freshwater withdrawals in the United States. Current transportation fuels, which account for approximately one-third of U.S. energy consumption, are not nearly as reliant on freshwater given that petroleum fuel production makes up just a few percent of U.S. water use. If transportation were to become more reliant on water-intensive sectors such as power generation and agriculture, there would be major implications for water availability in the United States. As electricity and biofuels gain a larger share of the market, this is exactly the transition that is taking place. Inconsistent water use metrics, inappropriate impact allocation practices, limited system boundaries due to lack the necessary tools and data, and the failure to quantify water resource availability and greenhouse gas (GHG) impacts are common pitfalls of existing assessments of transportation energy-related water use. To fill the knowledge gaps, this dissertation proposes a comprehensive life-cycle framework for assessing the water withdrawals and consumption of current and near-future U.S. transportation fuels -- including gasoline, bio-based ethanol, and electricity. With this proposed framework for performing a life-cycle inventory and impact assessment, the following three questions are answered: 1. What is the life-cycle water footprint of current and near-future transportation fuel production in the United States? 2. How might U.S. transportation fuel production pathways impact freshwater availability in the future? 3. What is the greenhouse gas-intensity of the water required for transportation fuel production, and how do these emissions impact the overall transportation fuel greenhouse gas footprints? Understanding the impacts of water use on freshwater resources and GHG emissions requires knowledge of not only the fuel production pathways, but also how these pathways interact with other sectors in the economy. As new transportation fuels emerge, demand for some goods and services will increase while for others it will decrease, and each change has an effect on overall water demand. Quantifying the net system-wide impact of producing these new fuels is key to understanding the water implications of transportation energy-related policy decisions. Furthermore, by geospatially disaggregating predicted water requirements for transportation fuel production pathways at the U.S. county-level, locations within the United States can be identified as vulnerable to local surface and groundwater shortages. These shortages may result in high water prices and the need for energy-intensive water supply methods such as desalination, importation, or wastewater recycling. Identifying regions with vulnerable water resources allows decision makers in industry and the public sector to guide burgeoning transportation fuel markets in ways that maximize their contributions to energy independence and greenhouse gas emissions reductions while avoiding negative impacts on water availability. Results from the U.S. analysis show that indirect water use has a significant impact on total water use, particularly for withdrawals. In no other pathway is this as pronounced as it is for cellulosic ethanol production (in this case, corn stover and Miscanthus to ethanol). By using system expansion to account for the electricity generation displaced by cellulosic biorefineries' exports to the grid, total water consumption for those pathways drops considerably and total withdrawals actually becomes a net negative number. When the inventory is geospatially disaggregated and compared to drought and groundwater vulnerability data, the results show that biofuel production concentrated in the Midwest puts pressure on the already-overpumped High Plains Aquifer. Petroleum fuel production pathways result in water use concentrated in locations that are predicted to experience long-term drought, specifically California, Texas, and Wyoming. Electricity, in contrast, is more widely distributed throughout the U.S., but the high surface water consumption rates in the western half of the country may exacerbate future surface water shortages in those regions. Gaining a better knowledge of how the production and consumption of fuels impacts freshwater resources is absolutely critical as humans attempt to transition into a more sustainable energy future. By making contributions to the methodologies required to assess the environmental impacts of water use, as well as knowledge about the potential water impacts of current and near-future U.S. transportation fuels, this dissertation provides U.S. decision makers with information necessary to create the most economical and sustainable transportation energy future possible while also providing future researchers with the tools to answer questions that have yet to be asked.


Biofuel Impacts on Water

Biofuel Impacts on Water
Author:
Publisher:
Total Pages: 31
Release: 2011
Genre:
ISBN:

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Sandia National Laboratories and General Motors Global Energy Systems team conducted a joint biofuels systems analysis project from March to November 2008. The purpose of this study was to assess the feasibility, implications, limitations, and enablers of large-scale production of biofuels. 90 billion gallons of ethanol (the energy equivalent of approximately 60 billion gallons of gasoline) per year by 2030 was chosen as the book-end target to understand an aggressive deployment. Since previous studies have addressed the potential of biomass but not the supply chain rollout needed to achieve large production targets, the focus of this study was on a comprehensive systems understanding the evolution of the full supply chain and key interdependencies over time. The supply chain components examined in this study included agricultural land use changes, production of biomass feedstocks, storage and transportation of these feedstocks, construction of conversion plants, conversion of feedstocks to ethanol at these plants, transportation of ethanol and blending with gasoline, and distribution to retail outlets. To support this analysis, we developed a 'Seed to Station' system dynamics model (Biofuels Deployment Model - BDM) to explore the feasibility of meeting specified ethanol production targets. The focus of this report is water and its linkage to broad scale biofuel deployment.


Biofuels Impact on Food Prices

Biofuels Impact on Food Prices
Author: United States. Congress. Senate. Committee on Energy and Natural Resources
Publisher:
Total Pages: 104
Release: 2008
Genre: Business & Economics
ISBN:

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