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Osvel Hinojosa-Huerta | Cornell University - Academia.edu
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Every year, the program grants a two-year fellowship to six stellar early-career professionals in Latin America working in multidisciplinary collaborative projects to generate solutions to the main environmental threats in this region.<br /><br />I have been working in conservation and research projects in northwestern Mexico since 1997, in particular in coastal and riparian areas of the Sonoran Desert. Some of my recent activities include the evaluation and recovery of protected species, the implementation of community-based restoration projects, and the creation of partnerships with governments and stakeholders for the conservation of nature.<br /><br />For 18 years, I worked with Pronatura Noroeste (a non-profit environmental organization in Mexico) to restore the Colorado River delta, including the recovery of river flows and the facilitation of binational negotiations between Mexico and the US for the sustainability of the Colorado River Basin.<br /><br />Education<br />Ph.D., Wildlife Ecology, University of Arizona<br />M.Sc., Wildlife and Fisheries Management, University of Arizona<br />B.Sc, Biochemical Engineering and Marine Sciences, ITESM Campus Guaymas<br /><div class="js-profile-less-about u-linkUnstyled u-tcGrayDarker u-textDecorationUnderline u-displayNone">less</div></div></div><div class="ri-section"><div class="ri-section-header"><span>Interests</span><a class="ri-more-link js-profile-ri-list-card" data-click-track="profile-user-info-primary-research-interest" data-has-card-for-ri-list="3384091">View All (16)</a></div><div class="ri-tags-container"><a data-click-track="profile-user-info-expand-research-interests" data-has-card-for-ri-list="3384091" href="https://www.academia.edu/Documents/in/Ornithology"><div id="js-react-on-rails-context" style="display:none" data-rails-context="{"inMailer":false,"i18nLocale":"en","i18nDefaultLocale":"en","href":"https://cornell.academia.edu/OsvelHinojosaHuerta","location":"/OsvelHinojosaHuerta","scheme":"https","host":"cornell.academia.edu","port":null,"pathname":"/OsvelHinojosaHuerta","search":null,"httpAcceptLanguage":null,"serverSide":false}"></div> <div class="js-react-on-rails-component" style="display:none" data-component-name="Pill" data-props="{"color":"gray","children":["Ornithology"]}" data-trace="false" data-dom-id="Pill-react-component-423c66a0-a1f0-4b4b-92d2-2827ebaf7481"></div> <div 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class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/113589701/Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_M%C3%A9xico"><img alt="Research paper thumbnail of Waterbird communities and associated wetlands of the Colorado River Delta, México" class="work-thumbnail" src="https://attachments.academia-assets.com/110510469/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/113589701/Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_M%C3%A9xico">Waterbird communities and associated wetlands of the Colorado River Delta, México</a></div><div class="wp-workCard_item"><span>Studies in avian biology</span><span>, Apr 23, 2004</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="5d440f7d1121b924174490190428188a" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":110510469,"asset_id":113589701,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/110510469/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="113589701"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item 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{"id":113589701,"title":"Waterbird communities and associated wetlands of the Colorado River Delta, México","translated_title":"","metadata":{"publisher":"Cooper Ornithological Society","grobid_abstract":"Despite extensive losses of wetlands caused by water diversions upstream, the Colorado River Delta in northwestern Mexico remains an important wetland system in the Sonoran Desert. The purpose of our study was to describe waterbird communities across a variety of wetland habitat types and zones that exist in the Delta. We measured species richness and abundance of waterbirds from September 1999 to August 2000. We observed a total of 11,918 individuals of 71 species at sites within seven wetland areas. The waterbird communitie differed with respect to guild composition and species abundances among the wetland zones. Wetlands along the eastern portion of the Delta (Cienega and Indio). which are upported by agricultural drains and managed under conservation initiatives, exhibited the highest species richness in our ummer and winter censuses, and highest abundance in summer. Shorebirds were the dominant guild in the summer period, while waterfowl were dominant during winter. Breeding marshbirds were also abundant, with the Yuma Clapper Rail (Rallus longirostris yumanensis) being most notable. Wetlands along the western Delta (Hardy and Cucapa) were al. o supported by agricultural drains, but were not managed specifically for wildlife. The Double-crested Cormorant (Phalacrocora:x auritus) and American Coot (Fulica americana) were dominant during winter, while long-legged wader (Ardeidae) were dominant in ummer. The compo ition of waterbird communities along the mainstem of the Colorado River was similar to that of wetlands along the western portion of the Delta. The shallow and ephemeral Laguna Salada, along the western boundary of the Delta, exhibited the highest waterbird abundance among our winter censuses when it was flooded in 2000. The results of our study suggest that even minimal levels of instream flows would lead to habitat improvements for waterbirds in the Delta floodplain. 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Using the value transfer method, we obtained the economic valuation that represents the loss of coastal ecosystem services caused by sea level rise in Mexico. Using the Bathtub method, digital elevation models and sea level data, we identified the areas in the country prone to flooding and the associated ecosystem impacts. In Mexico, the annual economic loss caused by the disappearance of coastal ecosystem services is estimated at $6,476,402,405 USD, where wetlands represent the greatest economic losses, since they represent the largest affected ecosystem by area. However, beaches and dunes are the most valued ecosystem due to the economic activities that occur in these areas. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="78863634"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/78863634/From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem"><img alt="Research paper thumbnail of From accident to management: The Cienega de Santa Clara ecosystem" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/78863634/From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem">From accident to management: The Cienega de Santa Clara ecosystem</a></div><div class="wp-workCard_item"><span>Ecological Engineering</span><span>, 2013</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail m...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail marsh with 11,500 ha of open water lagoons and mudflats) in Sonora, Mexico, was the unintended consequence of the solution to reduce the salinity of the U.S. water deliveries to Mexico. Under the 1944 Water Treaty, the U.S. was obliged to deliver water to Mexico. But the water that was delivered from the U.S. harmed crops in Mexico because it included brackish agricultural runoff from fields in the Lower Colorado River basin. In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico&#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. The most important management recommendation is a formal allocation of water of adequate volume and quality. The agreement reached in 2010s Minute 316 to the Treaty is a precedent for successful efforts to protect shared ecosystems along the U.S.–Mexico border.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78863634"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78863634"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78863634; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78863634]").text(description); $(".js-view-count[data-work-id=78863634]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78863634; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78863634']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78863634, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=78863634]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78863634,"title":"From accident to management: The Cienega de Santa Clara ecosystem","translated_title":"","metadata":{"abstract":"Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail marsh with 11,500 ha of open water lagoons and mudflats) in Sonora, Mexico, was the unintended consequence of the solution to reduce the salinity of the U.S. water deliveries to Mexico. Under the 1944 Water Treaty, the U.S. was obliged to deliver water to Mexico. But the water that was delivered from the U.S. harmed crops in Mexico because it included brackish agricultural runoff from fields in the Lower Colorado River basin. In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico\u0026#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. 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In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico\u0026#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. The most important management recommendation is a formal allocation of water of adequate volume and quality. 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data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/78863633/Status_of_marsh_birds_in_the_wetlands_of_the_Colorado_River_delta_M%C3%A9xico"><img alt="Research paper thumbnail of Status of marsh birds in the wetlands of the Colorado River delta, México" class="work-thumbnail" src="https://attachments.academia-assets.com/85757611/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/78863633/Status_of_marsh_birds_in_the_wetlands_of_the_Colorado_River_delta_M%C3%A9xico">Status of marsh birds in the wetlands of the Colorado River delta, México</a></div><div class="wp-workCard_item"><span>Ecological Engineering</span><span>, 2013</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a 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href="https://www.academia.edu/67419285/Collaboration_in_Mexico_Renewed_Hope_for_the_Colorado_River_Delta">Collaboration in Mexico: Renewed Hope for the Colorado River Delta</a></div><div class="wp-workCard_item"><span>Nevada Law Journal</span><span>, 2008</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all bu...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all but a dead ecosystem by scientists and environmental organizations alike. Once one of the largest wetland ecosystems in North America, a century of dam building, upstream water diversions, and agricultural development in the Mexicali Valley had reduced millions of acres of wetland ecosystem to just a few scattered areas of disconnected habitats by the 1970s. However, after flood flows in the 1980s and 1990s helped to revitalize important parts of this ecosystem, a collection of scientists, environmental organizations, public officials, and private business leaders began to take a renewed interest in this ecosystem—and began to explore the possibility that it could be restored. With more than a decade of determined efforts now behind us, we think that there is renewed hope for the Colorado River Delta. International recognition of the Delta’s ecological and socioeconomic importance has neve...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="c949ccb0c29dc8c9ae109d5d27e4a159" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":78242876,"asset_id":67419285,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/78242876/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="67419285"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="67419285"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 67419285; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=67419285]").text(description); $(".js-view-count[data-work-id=67419285]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 67419285; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='67419285']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 67419285, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "c949ccb0c29dc8c9ae109d5d27e4a159" } } $('.js-work-strip[data-work-id=67419285]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":67419285,"title":"Collaboration in Mexico: Renewed Hope for the Colorado River Delta","translated_title":"","metadata":{"abstract":"A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all but a dead ecosystem by scientists and environmental organizations alike. 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La revisión incluyó registros de 89 artículos y reportes, 16 008 especímenes depositados en colecciones zoológicas de diferentes museos y más de doscientos setenta y ocho mil registros que corresponden a observaciones de campo y datos de anillamiento generados por los autores. Se recopiló una base de datos de más de trescientos doce mil casos en la que se incorporó información que abarca de 1849 a 2008. La avifauna conocida de Sonora incluye 556 especies de 73 familias y 20 órdenes, con 227 especies residentes, 46 residentes de verano, 233 migratorias de larga distancia y 50 migratorias parciales. Especímenes de museos no considerados previamente y datos nuevos adicionaron 31 especies al número reportado por Russell y Monson en 1998 y permitieron evaluar el estatus de otras especies en el estado. 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Veintiocho especies están en riesgo a escala global de acuerdo a la Lista Roja de las Espec...","internal_url":"https://www.academia.edu/58259966/Avifauna_de_Sonora","translated_internal_url":"","created_at":"2021-10-15T19:37:50.836-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":3384091,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[],"slug":"Avifauna_de_Sonora","translated_slug":"","page_count":null,"language":"es","content_type":"Work","owner":{"id":3384091,"first_name":"Osvel","middle_initials":null,"last_name":"Hinojosa-Huerta","page_name":"OsvelHinojosaHuerta","domain_name":"cornell","created_at":"2013-02-27T03:10:57.812-08:00","display_name":"Osvel Hinojosa-Huerta","url":"https://cornell.academia.edu/OsvelHinojosaHuerta"},"attachments":[],"research_interests":[],"urls":[]}, dispatcherData: dispatcherData }); $(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> </div><div class="profile--tab_content_container js-tab-pane tab-pane" data-section-id="394884" id="papers"><div class="js-work-strip profile--work_container" data-work-id="113589701"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/113589701/Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_M%C3%A9xico"><img alt="Research paper thumbnail of Waterbird communities and associated wetlands of the Colorado River Delta, México" class="work-thumbnail" src="https://attachments.academia-assets.com/110510469/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/113589701/Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_M%C3%A9xico">Waterbird communities and associated wetlands of the Colorado River Delta, México</a></div><div class="wp-workCard_item"><span>Studies in avian biology</span><span>, Apr 23, 2004</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="5d440f7d1121b924174490190428188a" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":110510469,"asset_id":113589701,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/110510469/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="113589701"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="113589701"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 113589701; 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The purpose of our study was to describe waterbird communities across a variety of wetland habitat types and zones that exist in the Delta. We measured species richness and abundance of waterbirds from September 1999 to August 2000. We observed a total of 11,918 individuals of 71 species at sites within seven wetland areas. The waterbird communitie differed with respect to guild composition and species abundances among the wetland zones. Wetlands along the eastern portion of the Delta (Cienega and Indio). which are upported by agricultural drains and managed under conservation initiatives, exhibited the highest species richness in our ummer and winter censuses, and highest abundance in summer. Shorebirds were the dominant guild in the summer period, while waterfowl were dominant during winter. Breeding marshbirds were also abundant, with the Yuma Clapper Rail (Rallus longirostris yumanensis) being most notable. Wetlands along the western Delta (Hardy and Cucapa) were al. o supported by agricultural drains, but were not managed specifically for wildlife. The Double-crested Cormorant (Phalacrocora:x auritus) and American Coot (Fulica americana) were dominant during winter, while long-legged wader (Ardeidae) were dominant in ummer. The compo ition of waterbird communities along the mainstem of the Colorado River was similar to that of wetlands along the western portion of the Delta. The shallow and ephemeral Laguna Salada, along the western boundary of the Delta, exhibited the highest waterbird abundance among our winter censuses when it was flooded in 2000. The results of our study suggest that even minimal levels of instream flows would lead to habitat improvements for waterbirds in the Delta floodplain. A bi-national wetland management program for the Delta should consider the impacts of flood control measures and diversions for agricultural and urban uses to the health of wetland habitats on both sides of the international border.","publication_date":{"day":23,"month":4,"year":2004,"errors":{}},"publication_name":"Studies in avian biology","grobid_abstract_attachment_id":110510469},"translated_abstract":null,"internal_url":"https://www.academia.edu/113589701/Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_M%C3%A9xico","translated_internal_url":"","created_at":"2024-01-16T07:09:39.449-08:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":3384091,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[{"id":110510469,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/110510469/thumbnails/1.jpg","file_name":"SAB_027_2004_P52-60_20Waterbird_20Communities_20and_20Associated_20Wetlands_20of_20the_20Colorado_20River_20Delta_20Mexico.pdf","download_url":"https://www.academia.edu/attachments/110510469/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"Waterbird_communities_and_associated_wet.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/110510469/SAB_027_2004_P52-60_20Waterbird_20Communities_20and_20Associated_20Wetlands_20of_20the_20Colorado_20River_20Delta_20Mexico-libre.pdf?1705421845=\u0026response-content-disposition=attachment%3B+filename%3DWaterbird_communities_and_associated_wet.pdf\u0026Expires=1732381695\u0026Signature=SyWt1209v6UaCwRE9BXIO~ONkTfVgq7MrdGRP6eThrLeHLZtDe21eYD0ge3jhpQ5R2bPrTrFoJYhsrFQB0iEywhS71lV2MJ4QyZOQtM218HIjm~a2ZjnvFThbXsdOoElQjVx74F-Z2xqVPj~1D9--RomYHo1T2UTMjz3jcxu9SceDgoQYZCxUWs21qE2OxK7qIgXuh-Fr5tPEz1Gjmvnfl4ko88CjGiemVZaE8rU-r4sEDk~2KWOU8bVXbcVVgflMMTMTOvnUhMXD4aRlqDHMXItYlLEtm7qnLim38PmrRq7CMTIxonweoRhDnUpD4rnatJHXqDKhOwKqJUZmPvogQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"slug":"Waterbird_communities_and_associated_wetlands_of_the_Colorado_River_Delta_México","translated_slug":"","page_count":9,"language":"en","content_type":"Work","owner":{"id":3384091,"first_name":"Osvel","middle_initials":null,"last_name":"Hinojosa-Huerta","page_name":"OsvelHinojosaHuerta","domain_name":"cornell","created_at":"2013-02-27T03:10:57.812-08:00","display_name":"Osvel Hinojosa-Huerta","url":"https://cornell.academia.edu/OsvelHinojosaHuerta"},"attachments":[{"id":110510469,"title":"","file_type":"pdf","scribd_thumbnail_url":"https://attachments.academia-assets.com/110510469/thumbnails/1.jpg","file_name":"SAB_027_2004_P52-60_20Waterbird_20Communities_20and_20Associated_20Wetlands_20of_20the_20Colorado_20River_20Delta_20Mexico.pdf","download_url":"https://www.academia.edu/attachments/110510469/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&","bulk_download_file_name":"Waterbird_communities_and_associated_wet.pdf","bulk_download_url":"https://d1wqtxts1xzle7.cloudfront.net/110510469/SAB_027_2004_P52-60_20Waterbird_20Communities_20and_20Associated_20Wetlands_20of_20the_20Colorado_20River_20Delta_20Mexico-libre.pdf?1705421845=\u0026response-content-disposition=attachment%3B+filename%3DWaterbird_communities_and_associated_wet.pdf\u0026Expires=1732381695\u0026Signature=SyWt1209v6UaCwRE9BXIO~ONkTfVgq7MrdGRP6eThrLeHLZtDe21eYD0ge3jhpQ5R2bPrTrFoJYhsrFQB0iEywhS71lV2MJ4QyZOQtM218HIjm~a2ZjnvFThbXsdOoElQjVx74F-Z2xqVPj~1D9--RomYHo1T2UTMjz3jcxu9SceDgoQYZCxUWs21qE2OxK7qIgXuh-Fr5tPEz1Gjmvnfl4ko88CjGiemVZaE8rU-r4sEDk~2KWOU8bVXbcVVgflMMTMTOvnUhMXD4aRlqDHMXItYlLEtm7qnLim38PmrRq7CMTIxonweoRhDnUpD4rnatJHXqDKhOwKqJUZmPvogQ__\u0026Key-Pair-Id=APKAJLOHF5GGSLRBV4ZA"}],"research_interests":[{"id":261,"name":"Geography","url":"https://www.academia.edu/Documents/in/Geography"},{"id":83587,"name":"Wetland","url":"https://www.academia.edu/Documents/in/Wetland"},{"id":142977,"name":"Delta","url":"https://www.academia.edu/Documents/in/Delta"},{"id":1473681,"name":"River delta","url":"https://www.academia.edu/Documents/in/River_delta"}],"urls":[{"id":38631436,"url":"https://arizona.pure.elsevier.com/en/publications/waterbird-communities-and-associated-wetlands-of-the-colorado-riv"}]}, dispatcherData: dispatcherData }); 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Using the value transfer method, we obtained the economic valuation that represents the loss of coastal ecosystem services caused by sea level rise in Mexico. Using the Bathtub method, digital elevation models and sea level data, we identified the areas in the country prone to flooding and the associated ecosystem impacts. In Mexico, the annual economic loss caused by the disappearance of coastal ecosystem services is estimated at $6,476,402,405 USD, where wetlands represent the greatest economic losses, since they represent the largest affected ecosystem by area. However, beaches and dunes are the most valued ecosystem due to the economic activities that occur in these areas. 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Using the value transfer method, we obtained the economic valuation that represents the loss of coastal ecosystem services caused by sea level rise in Mexico. Using the Bathtub method, digital elevation models and sea level data, we identified the areas in the country prone to flooding and the associated ecosystem impacts. In Mexico, the annual economic loss caused by the disappearance of coastal ecosystem services is estimated at $6,476,402,405 USD, where wetlands represent the greatest economic losses, since they represent the largest affected ecosystem by area. However, beaches and dunes are the most valued ecosystem due to the economic activities that occur in these areas. 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$(this).data('initialized', true); } }); $a.trackClickSource(".js-work-strip-work-link", "profile_work_strip") }); </script> <div class="js-work-strip profile--work_container" data-work-id="78863634"><div class="profile--work_thumbnail hidden-xs"><a class="js-work-strip-work-link" data-click-track="profile-work-strip-thumbnail" href="https://www.academia.edu/78863634/From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem"><img alt="Research paper thumbnail of From accident to management: The Cienega de Santa Clara ecosystem" class="work-thumbnail" src="https://a.academia-assets.com/images/blank-paper.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/78863634/From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem">From accident to management: The Cienega de Santa Clara ecosystem</a></div><div class="wp-workCard_item"><span>Ecological Engineering</span><span>, 2013</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail m...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail marsh with 11,500 ha of open water lagoons and mudflats) in Sonora, Mexico, was the unintended consequence of the solution to reduce the salinity of the U.S. water deliveries to Mexico. Under the 1944 Water Treaty, the U.S. was obliged to deliver water to Mexico. But the water that was delivered from the U.S. harmed crops in Mexico because it included brackish agricultural runoff from fields in the Lower Colorado River basin. In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico&#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. The most important management recommendation is a formal allocation of water of adequate volume and quality. The agreement reached in 2010s Minute 316 to the Treaty is a precedent for successful efforts to protect shared ecosystems along the U.S.–Mexico border.</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="78863634"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="78863634"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 78863634; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=78863634]").text(description); $(".js-view-count[data-work-id=78863634]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 78863634; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='78863634']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 78863634, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (false){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "-1" } } $('.js-work-strip[data-work-id=78863634]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":78863634,"title":"From accident to management: The Cienega de Santa Clara ecosystem","translated_title":"","metadata":{"abstract":"Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail marsh with 11,500 ha of open water lagoons and mudflats) in Sonora, Mexico, was the unintended consequence of the solution to reduce the salinity of the U.S. water deliveries to Mexico. Under the 1944 Water Treaty, the U.S. was obliged to deliver water to Mexico. But the water that was delivered from the U.S. harmed crops in Mexico because it included brackish agricultural runoff from fields in the Lower Colorado River basin. In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico\u0026#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. The most important management recommendation is a formal allocation of water of adequate volume and quality. The agreement reached in 2010s Minute 316 to the Treaty is a precedent for successful efforts to protect shared ecosystems along the U.S.–Mexico border.","publisher":"Elsevier BV","publication_date":{"day":null,"month":null,"year":2013,"errors":{}},"publication_name":"Ecological Engineering"},"translated_abstract":"Abstract The 1977 creation of the Cienega de Santa Clara, an 18,000 ha wetland (6500 ha cattail marsh with 11,500 ha of open water lagoons and mudflats) in Sonora, Mexico, was the unintended consequence of the solution to reduce the salinity of the U.S. water deliveries to Mexico. Under the 1944 Water Treaty, the U.S. was obliged to deliver water to Mexico. But the water that was delivered from the U.S. harmed crops in Mexico because it included brackish agricultural runoff from fields in the Lower Colorado River basin. In 1972, Minute 242 to the Treaty called for a reduction in the salinity of U.S. deliveries. As a result, the U.S. diverted the agricultural runoff to a desiccated Colorado Delta floodplain in Sonora, Mexico, inadvertently creating the Cienega de Santa Clara, a wetland that now provides habitat for protected species (Desert Pupfish and the Yuma Clapper Rail), and wintering grounds for more than 200,000 migratory waterbirds. In June 1993, the wetland became part of Mexico\u0026#39;s Upper Gulf of California and Colorado River Delta Biosphere Reserve. The Yuma Desalting Plant, completed in 1992, was constructed by the U.S. to desalinate the agricultural runoff that flows to the Cienega. The high cost of operation and abundant Colorado River flow have kept the plant idle. However, the past decade of drought in the Colorado Basin has now made the agricultural runoff a valuable resource to meet growing U.S. water demands, but operating the plant could risk damage to the Cienega wetlands. In response, a binational collaboration of government agencies, environmental groups and university scientists began working together to protect and study this wetland. Replacement flows and environmental monitoring during the 2010–2011 trial run of the Yuma Desalting Plant are prompting a shift from passive to active management of this binational ecosystem. The purpose of this paper is to identify management practices that could help maximize the ecological benefits of water flows. The suggested management practices are based on historical variations in quantity, timing and quality of inflows, occasional dredgings and wildfires. The most important management recommendation is a formal allocation of water of adequate volume and quality. The agreement reached in 2010s Minute 316 to the Treaty is a precedent for successful efforts to protect shared ecosystems along the U.S.–Mexico border.","internal_url":"https://www.academia.edu/78863634/From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem","translated_internal_url":"","created_at":"2022-05-09T07:56:20.157-07:00","preview_url":null,"current_user_can_edit":null,"current_user_is_owner":null,"owner_id":3384091,"coauthors_can_edit":true,"document_type":"paper","co_author_tags":[],"downloadable_attachments":[],"slug":"From_accident_to_management_The_Cienega_de_Santa_Clara_ecosystem","translated_slug":"","page_count":null,"language":"en","content_type":"Work","owner":{"id":3384091,"first_name":"Osvel","middle_initials":null,"last_name":"Hinojosa-Huerta","page_name":"OsvelHinojosaHuerta","domain_name":"cornell","created_at":"2013-02-27T03:10:57.812-08:00","display_name":"Osvel 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href="https://www.academia.edu/78863632/Effects_of_drought_on_birds_and_riparian_vegetation_in_the_Colorado_River_Delta_Mexico"><img alt="Research paper thumbnail of Effects of drought on birds and riparian vegetation in the Colorado River Delta, Mexico" class="work-thumbnail" src="https://attachments.academia-assets.com/85757616/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/78863632/Effects_of_drought_on_birds_and_riparian_vegetation_in_the_Colorado_River_Delta_Mexico">Effects of drought on birds and riparian vegetation in the Colorado River Delta, Mexico</a></div><div class="wp-workCard_item"><span>Ecological Engineering</span><span>, 2013</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a 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water in the delta of the Colorado River, Mexico" class="work-thumbnail" src="https://attachments.academia-assets.com/85757600/thumbnails/1.jpg" /></a></div><div class="wp-workCard wp-workCard_itemContainer"><div class="wp-workCard_item wp-workCard--title"><a class="js-work-strip-work-link text-gray-darker" data-click-track="profile-work-strip-title" href="https://www.academia.edu/78863608/Long_term_sustainability_of_the_hydrology_and_vegetation_of_Cienega_de_Santa_Clara_an_anthropogenic_wetland_created_by_disposal_of_agricultural_drain_water_in_the_delta_of_the_Colorado_River_Mexico">Long-term sustainability of the hydrology and vegetation of Cienega de Santa Clara, an anthropogenic wetland created by disposal of agricultural drain water in the delta of the Colorado River, Mexico</a></div><div class="wp-workCard_item"><span>Ecological Engineering</span><span>, 2013</span></div><div class="wp-workCard_item wp-workCard--actions"><span 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href="https://www.academia.edu/67419285/Collaboration_in_Mexico_Renewed_Hope_for_the_Colorado_River_Delta">Collaboration in Mexico: Renewed Hope for the Colorado River Delta</a></div><div class="wp-workCard_item"><span>Nevada Law Journal</span><span>, 2008</span></div><div class="wp-workCard_item"><span class="js-work-more-abstract-truncated">A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all bu...</span><a class="js-work-more-abstract" data-broccoli-component="work_strip.more_abstract" data-click-track="profile-work-strip-more-abstract" href="javascript:;"><span> more </span><span><i class="fa fa-caret-down"></i></span></a><span class="js-work-more-abstract-untruncated hidden">A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all but a dead ecosystem by scientists and environmental organizations alike. Once one of the largest wetland ecosystems in North America, a century of dam building, upstream water diversions, and agricultural development in the Mexicali Valley had reduced millions of acres of wetland ecosystem to just a few scattered areas of disconnected habitats by the 1970s. However, after flood flows in the 1980s and 1990s helped to revitalize important parts of this ecosystem, a collection of scientists, environmental organizations, public officials, and private business leaders began to take a renewed interest in this ecosystem—and began to explore the possibility that it could be restored. With more than a decade of determined efforts now behind us, we think that there is renewed hope for the Colorado River Delta. International recognition of the Delta’s ecological and socioeconomic importance has neve...</span></div><div class="wp-workCard_item wp-workCard--actions"><span class="work-strip-bookmark-button-container"></span><a id="c949ccb0c29dc8c9ae109d5d27e4a159" class="wp-workCard--action" rel="nofollow" data-click-track="profile-work-strip-download" data-download="{"attachment_id":78242876,"asset_id":67419285,"asset_type":"Work","button_location":"profile"}" href="https://www.academia.edu/attachments/78242876/download_file?st=MTczMjM3ODA5NSw4LjIyMi4yMDguMTQ2&s=profile"><span><i class="fa fa-arrow-down"></i></span><span>Download</span></a><span class="wp-workCard--action visible-if-viewed-by-owner inline-block" style="display: none;"><span class="js-profile-work-strip-edit-button-wrapper profile-work-strip-edit-button-wrapper" data-work-id="67419285"><a class="js-profile-work-strip-edit-button" tabindex="0"><span><i class="fa fa-pencil"></i></span><span>Edit</span></a></span></span><span id="work-strip-rankings-button-container"></span></div><div class="wp-workCard_item wp-workCard--stats"><span><span><span class="js-view-count view-count u-mr2x" data-work-id="67419285"><i class="fa fa-spinner fa-spin"></i></span><script>$(function () { var workId = 67419285; window.Academia.workViewCountsFetcher.queue(workId, function (count) { var description = window.$h.commaizeInt(count) + " " + window.$h.pluralize(count, 'View'); $(".js-view-count[data-work-id=67419285]").text(description); $(".js-view-count[data-work-id=67419285]").attr('title', description).tooltip(); }); });</script></span></span><span><span class="percentile-widget hidden"><span class="u-mr2x work-percentile"></span></span><script>$(function () { var workId = 67419285; window.Academia.workPercentilesFetcher.queue(workId, function (percentileText) { var container = $(".js-work-strip[data-work-id='67419285']"); container.find('.work-percentile').text(percentileText.charAt(0).toUpperCase() + percentileText.slice(1)); container.find('.percentile-widget').show(); container.find('.percentile-widget').removeClass('hidden'); }); });</script></span><span><script>$(function() { new Works.PaperRankView({ workId: 67419285, container: "", }); });</script></span></div><div id="work-strip-premium-row-container"></div></div></div><script> require.config({ waitSeconds: 90 })(["https://a.academia-assets.com/assets/wow_profile-f77ea15d77ce96025a6048a514272ad8becbad23c641fc2b3bd6e24ca6ff1932.js","https://a.academia-assets.com/assets/work_edit-ad038b8c047c1a8d4fa01b402d530ff93c45fee2137a149a4a5398bc8ad67560.js"], function() { // from javascript_helper.rb var dispatcherData = {} if (true){ window.WowProfile.dispatcher = window.WowProfile.dispatcher || _.clone(Backbone.Events); dispatcherData = { dispatcher: window.WowProfile.dispatcher, downloadLinkId: "c949ccb0c29dc8c9ae109d5d27e4a159" } } $('.js-work-strip[data-work-id=67419285]').each(function() { if (!$(this).data('initialized')) { new WowProfile.WorkStripView({ el: this, workJSON: {"id":67419285,"title":"Collaboration in Mexico: Renewed Hope for the Colorado River Delta","translated_title":"","metadata":{"abstract":"A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all but a dead ecosystem by scientists and environmental organizations alike. 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International recognition of the Delta’s ecological and socioeconomic importance has neve...","publication_date":{"day":null,"month":null,"year":2008,"errors":{}},"publication_name":"Nevada Law Journal"},"translated_abstract":"A little more than thirty years ago, the Colorado River Delta (the “Delta”) was considered all but a dead ecosystem by scientists and environmental organizations alike. Once one of the largest wetland ecosystems in North America, a century of dam building, upstream water diversions, and agricultural development in the Mexicali Valley had reduced millions of acres of wetland ecosystem to just a few scattered areas of disconnected habitats by the 1970s. 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