Works matching Chesapeake Bay
Results: 2350
Proposals for second tunnel for Chesapeake Bay Bridge all top $1 billion.
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- Mining Engineering, 2016, v. 68, n. 6, p. 5
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Adult-onset hair loss in Chesapeake Bay retrievers: a clinical and histological study.
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- Veterinary Dermatology, 2005, v. 16, n. 1, p. 39, doi. 10.1111/j.1365-3164.2005.00432.x
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Wind Modulation of Dissolved Oxygen in Chesapeake Bay.
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- Estuaries & Coasts, 2010, v. 33, n. 5, p. 1164, doi. 10.1007/s12237-010-9319-9
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Predicting dissolved oxygen in the Chesapeake Bay: applications and implications.
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- Aquatic Sciences, 2011, v. 73, n. 3, p. 437, doi. 10.1007/s00027-011-0191-x
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An assessment of benthic condition in several small watersheds of the Chesapeake Bay, USA.
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- Environmental Monitoring & Assessment, 2011, v. 176, n. 1-4, p. 483, doi. 10.1007/s10661-010-1599-9
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Assessing benthic community condition in Chesapeake Bay: does the use of different benthic indices matter?
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- Environmental Monitoring & Assessment, 2009, v. 150, n. 1-4, p. 119, doi. 10.1007/s10661-008-0678-7
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Assessment and significance of phytoplankton species composition within Chesapeake Bay and Virginia tributaries through a long-term monitoring program.
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- Environmental Monitoring & Assessment, 2009, v. 150, n. 1-4, p. 143, doi. 10.1007/s10661-008-0680-0
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Application of the Benthic Index of Biotic Integrity to Environmental Monitoring in Chesapeake Bay.
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- Environmental Monitoring & Assessment, 2003, v. 81, n. 1-3, p. 163, doi. 10.1023/A:1021377024498
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Mycobacteria isolated from Chesapeake Bay fish.
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- Journal of Fish Diseases, 2010, v. 33, n. 1, p. 39, doi. 10.1111/j.1365-2761.2009.01087.x
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- Article
The Cost of Nutrient Reduction: A Case Study of Chesapeake Bay.
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- Coastal Management, 2000, v. 28, n. 2, p. 175, doi. 10.1080/089207500263585
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Modelling river discharge and precipitation from estuarine salinity in the northern Chesapeake Bay: application to Holocene palaeoclimate.
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- Holocene, 2006, v. 16, n. 4, p. 467, doi. 10.1191/0959683606hl944rp
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Chesapeake Bay fish-osprey ( Pandion haliaetus) food chain: Evaluation of contaminant exposure and genetic damage.
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- Environmental Toxicology & Chemistry, 2016, v. 35, n. 6, p. 1560, doi. 10.1002/etc.3386
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Chesapeake Bay watershed pesticide use declines but toxicity increases.
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- Environmental Toxicology & Chemistry, 2011, v. 30, n. 5, p. 1223, doi. 10.1002/etc.491
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AGRICULTURAL PESTICIDES AND SELECTED DEGRADATION PRODUCTS IN FIVE TIDAL REGIONS AND THE MAIN STEM OF CHESAPEAKE BAY, USA.
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- Environmental Toxicology & Chemistry, 2007, v. 26, n. 12, p. 2567, doi. 10.1897/06-655.1
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The Importance of Winter Dinoflagellate Blooms in Chesapeake Bay—a Missing Link in Bay Productivity.
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- Estuaries & Coasts, 2023, v. 46, n. 4, p. 986, doi. 10.1007/s12237-023-01191-0
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Large-Scale Spatial and Temporal Patterns and Importance of Sediment–Water Oxygen and Nutrient Fluxes in the Chesapeake Bay Region.
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- Estuaries & Coasts, 2023, v. 46, n. 2, p. 356, doi. 10.1007/s12237-022-01127-0
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Localized Water Quality Improvement in the Choptank Estuary, a Tributary of Chesapeake Bay.
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- Estuaries & Coasts, 2021, v. 44, n. 5, p. 1274, doi. 10.1007/s12237-020-00872-4
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Modeling the Origin of the Particulate Organic Matter Flux to the Hypoxic Zone of Chesapeake Bay in Early Summer.
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- Estuaries & Coasts, 2021, v. 44, n. 3, p. 672, doi. 10.1007/s12237-020-00806-0
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Influences of Wave Climate and Sea Level on Shoreline Erosion Rates in the Maryland Chesapeake Bay.
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- Estuaries & Coasts, 2018, v. 41, p. 19, doi. 10.1007/s12237-017-0257-7
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Long-Term Trends of Nutrients and Phytoplankton in Chesapeake Bay.
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- Estuaries & Coasts, 2016, v. 39, n. 3, p. 664, doi. 10.1007/s12237-015-0023-7
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Environmental Models and Public Stakeholders in the Chesapeake Bay Watershed.
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- Estuaries & Coasts, 2015, v. 38, p. 97, doi. 10.1007/s12237-013-9650-z
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Shoreline Energy and Sea Level Dynamics in Lower Chesapeake Bay: History and Patterns.
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- Estuaries & Coasts, 2014, v. 37, n. 2, p. 508, doi. 10.1007/s12237-013-9672-6
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Role of Late Winter-Spring Wind Influencing Summer Hypoxia in Chesapeake Bay.
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- Estuaries & Coasts, 2013, v. 36, n. 4, p. 683, doi. 10.1007/s12237-013-9592-5
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Habitat Affects Survival of Translocated Bay Scallops, Argopecten irradians concentricus (Say 1822), in Lower Chesapeake Bay.
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- Estuaries & Coasts, 2012, v. 35, n. 5, p. 1340, doi. 10.1007/s12237-012-9510-2
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Experimental Effects of the Grass Shrimp, Palaemonetes pugio, on Hard-Substrate Communities in Chesapeake Bay and an Adjacent Coastal Bay, USA.
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- Estuaries & Coasts, 2012, v. 35, n. 4, p. 1128, doi. 10.1007/s12237-012-9486-y
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Climate Forcing and Salinity Variability in Chesapeake Bay, USA.
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- Estuaries & Coasts, 2012, v. 35, n. 1, p. 237, doi. 10.1007/s12237-011-9423-5
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Annual, Seasonal, and Regional Variability in Diet of Atlantic Croaker ( Micropogonias undulatus) in Chesapeake Bay.
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- Estuaries & Coasts, 2011, v. 34, n. 4, p. 691, doi. 10.1007/s12237-010-9348-4
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Long-Term Variability of Nutrients and Chlorophyll in the Chesapeake Bay: A Retrospective Analysis, 1985–2008.
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- Estuaries & Coasts, 2010, v. 33, n. 5, p. 1128, doi. 10.1007/s12237-010-9325-y
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Long-Term Trends in Submersed Aquatic Vegetation (SAV) in Chesapeake Bay, USA, Related to Water Quality.
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- Estuaries & Coasts, 2010, v. 33, n. 5, p. 1144, doi. 10.1007/s12237-010-9311-4
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Distribution, Abundance and Domoic Acid Analysis of the Toxic Diatom Genus Pseudo-nitzschia from the Chesapeake Bay.
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- Estuaries & Coasts, 2008, v. 31, n. 4, p. 664, doi. 10.1007/s12237-008-9053-8
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Evaluating the Efficacy of Five Chlorophyll- a Algorithms in Chesapeake Bay (USA) for Operational Monitoring and Assessment.
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- Journal of Marine Science & Engineering, 2022, v. 10, n. 8, p. 1104, doi. 10.3390/jmse10081104
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Projections of Atmospheric Nitrogen Deposition to the Chesapeake Bay Watershed.
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- Journal of Geophysical Research. Biogeosciences, 2019, v. 124, n. 11, p. 3307, doi. 10.1029/2019JG005203
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Sustainable exploitation and management of autogenic ecosystem engineers: application to oysters in Chesapeake Bay.
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- Ecological Applications, 2013, v. 23, n. 4, p. 766, doi. 10.1890/12-0563.1
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Modeling and forecasting the distribution of Vibrio vulnificus in Chesapeake Bay.
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- Journal of Applied Microbiology, 2014, v. 117, n. 5, p. 1312, doi. 10.1111/jam.12624
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Characterization of Physicochemical Attributes and Muscle Protein Quality of Blue Catfish (Ictalurus furcatus) in Chesapeake Bay.
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- Journal of Aquatic Food Product Technology, 2020, v. 29, n. 7, p. 616, doi. 10.1080/10498850.2020.1784342
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Gene transfer agent (GTA) genes reveal diverse and dynamic Roseobacter and Rhodobacter populations in the Chesapeake Bay.
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- ISME Journal: Multidisciplinary Journal of Microbial Ecology, 2009, v. 3, n. 3, p. 364, doi. 10.1038/ismej.2008.115
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Late Pleistocene eolian features in southeastern Maryland and Chesapeake Bay region indicate strong WNW–NW winds accompanied growth of the Laurentide Ice Sheet
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- Quaternary Research, 2009, v. 71, n. 3, p. 409, doi. 10.1016/j.yqres.2009.02.001
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Improving Water Quality in an Iconic Estuary: An Internal Meta-analysis of Property Value Impacts Around the Chesapeake Bay.
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- Environmental & Resource Economics, 2018, v. 69, n. 2, p. 265, doi. 10.1007/s10640-016-0078-3
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Seasonal Variation in Space Use by Nonbreeding Bald Eagles Within the Upper Chesapeake Bay.
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- Journal of Raptor Research, 2015, v. 49, n. 3, p. 250, doi. 10.3356/JRR-13-61.1
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Quantifying connectivity and its effects on sediment budgeting for an agricultural basin, Chesapeake Bay Watershed, United States.
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- Hydrological Processes, 2022, v. 36, n. 12, p. 1, doi. 10.1002/hyp.14777
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Progress in reducing nutrient and sediment loads to Chesapeake Bay: Three decades of monitoring data and implications for restoring complex ecosystems.
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- WIRES Water, 2023, v. 10, n. 5, p. 1, doi. 10.1002/wat2.1671
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Recovery of the Chesapeake Bay Bald Eagle Nesting Population.
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- Journal of Wildlife Management, 2008, v. 72, n. 1, p. 152, doi. 10.2193/2005-616
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Sea-Level Slopes and Volume Fluxes Produced by Atmospheric Forcing in Estuaries: Chesapeake Bay Case Study.
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- Journal of Coastal Research, 2008, v. 24, p. 208
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Holocene sea-level variability from Chesapeake Bay Tidal Marshes, USA.
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- Holocene, 2019, v. 29, n. 11, p. 1679, doi. 10.1177/0959683619862028
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Water quality impacts of climate change, land use, and population growth in the Chesapeake Bay watershed.
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- Journal of the American Water Resources Association, 2023, v. 59, n. 6, p. 1313, doi. 10.1111/1752-1688.13144
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The Chesapeake Bay Land Change Model: Simulating future land use scenarios and potential impacts on water quality.
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- Journal of the American Water Resources Association, 2023, v. 59, n. 6, p. 1287, doi. 10.1111/1752-1688.13131
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Impact of Wetlands Loss and Migration, Induced by Climate Change, on Chesapeake Bay DO Standards.
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- Journal of the American Water Resources Association, 2022, v. 58, n. 6, p. 958, doi. 10.1111/1752-1688.12919
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Extent and Causes of Chesapeake Bay Warming.
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- Journal of the American Water Resources Association, 2022, v. 58, n. 6, p. 805, doi. 10.1111/1752-1688.12916
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Mechanisms Controlling Climate Warming Impact on the Occurrence of Hypoxia in Chesapeake Bay.
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- Journal of the American Water Resources Association, 2022, v. 58, n. 6, p. 855, doi. 10.1111/1752-1688.12907
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Toward Explaining Nitrogen and Phosphorus Trends in Chesapeake Bay Tributaries, 1992–2012.
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- Journal of the American Water Resources Association, 2019, v. 55, n. 5, p. 1149, doi. 10.1111/1752-1688.12756
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