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On October 22, 2024, 9:47:20 AM UTC,
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Added resource vandeVijsel_etal_AlgalInducedFeedbacks_README.pdf_v20210424.zip to Algal-induced biogeomorphic feedbacks lay the groundwork for coastal wetland development (Chapter 4 in PhD thesis Roeland C. van de Vijsel)
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| 2 | "author": null, | 2 | "author": null, | ||
| 3 | "author_email": null, | 3 | "author_email": null, | ||
| 4 | "code": "7b.b.ub", | 4 | "code": "7b.b.ub", | ||
| 5 | "contributor": "NIOZ Royal Netherlands Institute for Sea Research", | 5 | "contributor": "NIOZ Royal Netherlands Institute for Sea Research", | ||
| 6 | "creator_user_id": "49fd5a1d-0f5a-44ab-a40a-1002a9c549e0", | 6 | "creator_user_id": "49fd5a1d-0f5a-44ab-a40a-1002a9c549e0", | ||
| 7 | "creators": "[{\"firstname\":\"Roeland C.\",\"lastname\":\"van de | 7 | "creators": "[{\"firstname\":\"Roeland C.\",\"lastname\":\"van de | ||
| 8 | Vijsel\",\"affiliation\":\"Royal Netherlands Institute for Sea | 8 | Vijsel\",\"affiliation\":\"Royal Netherlands Institute for Sea | ||
| 9 | scorrespondingauthor\":true},{\"firstname\":\"Jim\",\"lastname\":\"van | 9 | scorrespondingauthor\":true},{\"firstname\":\"Jim\",\"lastname\":\"van | ||
| 10 | Belzen\",\"affiliation\":\"Royal Netherlands Institute for Sea | 10 | Belzen\",\"affiliation\":\"Royal Netherlands Institute for Sea | ||
| 11 | ddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Tjeerd | 11 | ddress\":\"\",\"iscorrespondingauthor\":false},{\"firstname\":\"Tjeerd | ||
| 12 | J.\",\"lastname\":\"Bouma\",\"affiliation\":\"Royal Netherlands | 12 | J.\",\"lastname\":\"Bouma\",\"affiliation\":\"Royal Netherlands | ||
| 13 | Institute for Sea | 13 | Institute for Sea | ||
| 14 | respondingauthor\":false},{\"firstname\":\"Daphne\",\"lastname\":\"van | 14 | respondingauthor\":false},{\"firstname\":\"Daphne\",\"lastname\":\"van | ||
| 15 | der Wal\",\"affiliation\":\"Royal Netherlands Institute for Sea | 15 | der Wal\",\"affiliation\":\"Royal Netherlands Institute for Sea | ||
| 16 | rrespondingauthor\":false},{\"firstname\":\"Johan\",\"lastname\":\"van | 16 | rrespondingauthor\":false},{\"firstname\":\"Johan\",\"lastname\":\"van | ||
| 17 | de Koppel\",\"affiliation\":\"Royal Netherlands Institute for Sea | 17 | de Koppel\",\"affiliation\":\"Royal Netherlands Institute for Sea | ||
| 18 | 275\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", | 18 | 275\",\"contactemailaddress\":\"\",\"iscorrespondingauthor\":false}]", | ||
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| 20 | "dates": "", | 20 | "dates": "", | ||
| 21 | "deposit_date": "2021-03-23", | 21 | "deposit_date": "2021-03-23", | ||
| 22 | "depositor": "Roeland van de Vijsel", | 22 | "depositor": "Roeland van de Vijsel", | ||
| 23 | "distribution_date": "2021-03-23", | 23 | "distribution_date": "2021-03-23", | ||
| 24 | "distributor": "Research Data Management(NIOZ Royal Netherlands | 24 | "distributor": "Research Data Management(NIOZ Royal Netherlands | ||
| 25 | Institute for Sea Research)", | 25 | Institute for Sea Research)", | ||
| 26 | "doi_date_published": "2021-10-11", | 26 | "doi_date_published": "2021-10-11", | ||
| 27 | "funding_references": "[{\"name\":\"Netherlands Organisation for | 27 | "funding_references": "[{\"name\":\"Netherlands Organisation for | ||
| 28 | Scientific Research | 28 | Scientific Research | ||
| 29 | (NWO)\",\"awardnumber\":\"869.15.003\",\"awardtitle\":\"The New | 29 | (NWO)\",\"awardnumber\":\"869.15.003\",\"awardtitle\":\"The New | ||
| 30 | Delta\"},{\"name\":\"Vlaams-Nederlandse Scheldecommissie | 30 | Delta\"},{\"name\":\"Vlaams-Nederlandse Scheldecommissie | ||
| 31 | (VNSC)\",\"awardnumber\":\"3109 1805\",\"awardtitle\":\"Vegetation | 31 | (VNSC)\",\"awardnumber\":\"3109 1805\",\"awardtitle\":\"Vegetation | ||
| 32 | modelling HPP\"}]", | 32 | modelling HPP\"}]", | ||
| 33 | "groups": [], | 33 | "groups": [], | ||
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| 39 | "metadata_created": "2024-10-22T09:47:19.167703", | 39 | "metadata_created": "2024-10-22T09:47:19.167703", | ||
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| 41 | "name": "7bbub", | 41 | "name": "7bbub", | ||
| 42 | "notes": "Coastal wetlands provide valuable ecosystem services, | 42 | "notes": "Coastal wetlands provide valuable ecosystem services, | ||
| 43 | including biodiverse habitats, carbon sequestration potential and | 43 | including biodiverse habitats, carbon sequestration potential and | ||
| 44 | nature-based flood defense. The establishment of saltmarsh vegetation | 44 | nature-based flood defense. The establishment of saltmarsh vegetation | ||
| 45 | and other key wetland species on bare tidal flats relies on windows of | 45 | and other key wetland species on bare tidal flats relies on windows of | ||
| 46 | opportunity, which are traditionally linked to physical factors such | 46 | opportunity, which are traditionally linked to physical factors such | ||
| 47 | as hydrodynamic conditions, substrate stability and drainage. However, | 47 | as hydrodynamic conditions, substrate stability and drainage. However, | ||
| 48 | observations on tidal flats suggest that plant seedlings settle in | 48 | observations on tidal flats suggest that plant seedlings settle in | ||
| 49 | high densities on raised sedimentary ridges colonized by mats of | 49 | high densities on raised sedimentary ridges colonized by mats of | ||
| 50 | primitive filamentous algae (Vaucheria sp.). Such algal- covered | 50 | primitive filamentous algae (Vaucheria sp.). Such algal- covered | ||
| 51 | ridges were previously shown to have higher sediment strength than | 51 | ridges were previously shown to have higher sediment strength than | ||
| 52 | substrate without algae. Here, we investigated whether these | 52 | substrate without algae. Here, we investigated whether these | ||
| 53 | measurements can be explained by physical processes only, or that | 53 | measurements can be explained by physical processes only, or that | ||
| 54 | biological (Vaucheria-induced) processes influence early saltmarsh | 54 | biological (Vaucheria-induced) processes influence early saltmarsh | ||
| 55 | establishment through the formation of stabilized bedforms. We | 55 | establishment through the formation of stabilized bedforms. We | ||
| 56 | performed two experiments under controlled mesocosm conditions, to | 56 | performed two experiments under controlled mesocosm conditions, to | ||
| 57 | test the hypotheses that i) Vaucheria grows better on elevated | 57 | test the hypotheses that i) Vaucheria grows better on elevated | ||
| 58 | topographic relief, ii) the binding force of their algal filaments | 58 | topographic relief, ii) the binding force of their algal filaments | ||
| 59 | increases sediment strength, which consequently iii) maintains and | 59 | increases sediment strength, which consequently iii) maintains and | ||
| 60 | creates elevated topographic relief on which algal growth is further | 60 | creates elevated topographic relief on which algal growth is further | ||
| 61 | facilitated. The existence of this algal-induced biogeomorphic | 61 | facilitated. The existence of this algal-induced biogeomorphic | ||
| 62 | feedback cycle was confirmed in our experiments. Our findings reveal | 62 | feedback cycle was confirmed in our experiments. Our findings reveal | ||
| 63 | that halophytic plants are not the only important ecosystem engineer | 63 | that halophytic plants are not the only important ecosystem engineer | ||
| 64 | in coastal wetlands, but that fast-growing, mat- forming species like | 64 | in coastal wetlands, but that fast-growing, mat- forming species like | ||
| 65 | Vaucheria also play a major role by creating stable and elevated | 65 | Vaucheria also play a major role by creating stable and elevated | ||
| 66 | sedimentary relief. Our study indicates that biota can widen the | 66 | sedimentary relief. Our study indicates that biota can widen the | ||
| 67 | windows of opportunity for ecosystem establishment, which can be | 67 | windows of opportunity for ecosystem establishment, which can be | ||
| 68 | utilized to optimally design managed coastal realignment projects that | 68 | utilized to optimally design managed coastal realignment projects that | ||
| 69 | aim at the restoration of coastal ecosystems.", | 69 | aim at the restoration of coastal ecosystems.", | ||
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| 116 | "tags": [ | 139 | "tags": [ | ||
| 117 | { | 140 | { | ||
| 118 | "display_name": "Coastal wetlands restoration mudflat saltmarsh | 141 | "display_name": "Coastal wetlands restoration mudflat saltmarsh | ||
| 119 | biogeomorphology algal mats vegetation sediment stre", | 142 | biogeomorphology algal mats vegetation sediment stre", | ||
| 120 | "id": "d8c57924-cdd0-4df3-8e97-b21b2ea3b693", | 143 | "id": "d8c57924-cdd0-4df3-8e97-b21b2ea3b693", | ||
| 121 | "name": "Coastal wetlands restoration mudflat saltmarsh | 144 | "name": "Coastal wetlands restoration mudflat saltmarsh | ||
| 122 | biogeomorphology algal mats vegetation sediment stre", | 145 | biogeomorphology algal mats vegetation sediment stre", | ||
| 123 | "state": "active", | 146 | "state": "active", | ||
| 124 | "vocabulary_id": null | 147 | "vocabulary_id": null | ||
| 125 | } | 148 | } | ||
| 126 | ], | 149 | ], | ||
| 127 | "title": "Algal-induced biogeomorphic feedbacks lay the groundwork | 150 | "title": "Algal-induced biogeomorphic feedbacks lay the groundwork | ||
| 128 | for coastal wetland development (Chapter 4 in PhD thesis Roeland C. | 151 | for coastal wetland development (Chapter 4 in PhD thesis Roeland C. | ||
| 129 | van de Vijsel)", | 152 | van de Vijsel)", | ||
| 130 | "type": "dataset", | 153 | "type": "dataset", | ||
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| 132 | "version": "1" | 155 | "version": "1" | ||
| 133 | } | 156 | } |