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Author: J. R. Henderson
Edition: 1st
Year: 2017
ISBN: 978-1-85942-225-0
Publisher: SCI
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STAAD.Pro Advanced CONNECT Edition - Version 21.00.02.30
Size: 479MB + 3.40MB
What is New & Changed in STAAD.Pro
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Laboratory Manual - Hydraulics and Hydraulic Machines Author: R.V. Raikar
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Innovative bridge design handbook : construction, rehabilitation and maintenance
Author(s)/Editor(s): Pipinato, Alessio | Size: 312 MB | Format:PDF | Quality:Unspecified | Publisher: Butterworth-Heinemann is an imprint of Elsevier | Year: 2015 | pages: 878 | ISBN: 0128000589, 9780128000588
As known, each bridge presents a unique set of design, construction, and maintenance challenges. The designer must determine the appropriate methods and level of refinement necessary to design and analyze each bridge on a case-by-case basis. The Innovative Bridge Design Handbook: Construction, Rehabilitation, and Maintenance encompasses the state of the art in bridge design, construction, maintenance, and safety assessment. Written by an international group of experts, this book provides innovative design approaches used in various parts of the world and explores concepts in design, construction, and maintenance that will reduce project costs and increase structural safety and durability. Furthermore, research and innovative solutions are described throughout chapters.
The Innovative Bridge Design Handbook: Construction, Rehabilitation, and Maintenance brings together the specific knowledge of a bevy of experts and academics in bridge engineering in the areas of design, assessment, research, and construction. The handbook begins with an analysis of the history and development of bridge aesthetics and design; various types of loads including seismic and wind loads are then described, together with fatigue and fracture. Bridge design based on material such as reinforced concrete, prestressed reinforced concrete, steel and composite, timber, masonry bridges is analyzed and detailed according to international codes and standards. Then bridge design based on geometry, such as arch bridges, girders, cable stayed and suspension bridges, is illustrated. This is followed by a discussion of a number of special topics, including integral, movable, highway and railway bridges, together with seismic component devices, cables, orthotropic decks, foundations, and case studies. Finally, bridge construction equipment, bridge assessment retrofit and management, bridge monitoring, fiber-reinforced polymers to reinforce bridges, bridge collapse issues are covered.
Loads including seismic and wind loads, fatigue and fracture, local effectsStructural analysis including numerical methods (FEM), dynamics, risk and reliability, innovative structural typologiesBridge design based on material type: RC and PRC, steel and composite, timber and masonry bridgesBridge design based on geometry: arch bridges, girders, cable stayed and suspension bridgesSpecial topics: integral, movable, highway, railway bridges, seismic component devices, cables, orthotropic decks, foundationsConstruction including construction case studies, construction equipment, bridge assessment, bridge management, retrofit and strengthening, monitoring procedures
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Structural Health Monitoring of Large Civil Engineering Structures
Author(s):
Hua-Peng Chen
Edition:
1st
Publish Date:
2018
ISBN:
978-1-119-16643-6
Published By:
Wiley
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Chalk has proved to be one of the more difficult rocks to corelog as it breaks up readily during the drilling process leading to core-loss and destructuring, particularly where flints, nodular chalks, and/or fractures are present. One of the greatest difficulties is the identification of chalk engineering grade which relies heavily on fracture aperture. Obtaining the correct grade to define the depth of weathering and the depth at which fractures become closed is essential whether for tunnels in London or wind turbine piled foundations in the offshore chalks. Very few geologists and engineers have had the opportunity to study field sections in the chalk so there is little visual appreciation of the grades or the variation to expect or even what flint bands look like. To partly overcome this difficulty, both field and core sections are illustrated in this book.
Equally important to recognizing chalk grade is the building of conceptual ground models for construction projects. This can only be achieved if the various chalk formations, beds, and marker beds can be identified from cores and then boreholes correlated using the marker beds. The chalk stratigraphy is accordingly covered with key formations and marker beds illustrated, and the best field sections for viewing them identified.
This book is based on the standard lithostratigraphy and method of engineering description of chalk developed over many years. Also important are over 3,000 onshore and offshore chalk-cored boreholes undertaken by the author over more than 30 years. In addition, typical lithologies and weathering profiles representing the chalk formations likely to be encountered in the various onshore and offshore construction projects are illustrated using both field exposures, rotary core samples, and geophysical borehole wire-line logs.
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