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barriers
Modeling Multiphase Organic Spills in Coastal Sites with TMVOC V.2.0 All rights reserved. No part of this periodical may be reproduced or transmitted in any form or by any means, electronic or mechanical, including photocopying, recording, or any information storage and retrieval system, without permission in writing from the publisher.
Development of Middle Continental Shelf Sand Ridges: New Jersey
Preservation of ice-formed features in a subarctic sandy beach sequence; geologic implications
Time-stratigraphic aspects of a formation: Interpretation of surficial Pleistocene deposits by analogy with Holocene paralic deposits, southeastern Delaware
Carbonate Sand Bodies Along Contrasting Shallow Bank Margins Facing Open Seaways in Northern Bahamas
Holocene transgression in South-central Long Island, New York
Variations in Cretaceous Coal-Bearing Strata, Gallup Coal Field, New Mexico: ABSTRACT
Evaluation of Temperate Zone Coastal-Marsh Sediments as Hydrocarbon Source Beds: ABSTRACT
Models of marine transgression —Example from Lower Cretaceous fluvial and paralic deposits, north-central Kansas
In the latter part of the nineteenth century, G. K. Gilbert began a study of the origin of the lakeshore features of ancestral Lake Bonneville. By means of hypothesis and observation, he used features of the shorelines of the Great Lakes and the Atlantic and Pacific Oceans to form modern-ancient analogs. Studies of present coastal processes and the geometry and internal structure of the Lake Bonneville shorelines lead to the hypothesis that the littoral transport mechanism was dominant in the formation of lagoon-barrier coastal systems. His works on barrier evolution have stood the test of time. Although some of the world’s barrier shorelines have evolved by other processes, most of them appear to fit Gilbert’s hypothesis for barrier evolution. Furthermore, the process of littoral transport appears to be of great importance in modification or alteration of coastal barrier landforms no matter what their origin.