ACI SP-323-2018 Evaluation of Concrete Bridge Behavior through Load Testing C International Perspectives.pdf
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1、An ACI Technical Publication SYMPOSIUM VOLUME SP-323 Evaluation of Concrete Bridge Behavior through Load Testing International Perspectives Editors: Eva Lantsoght and Pinar OkumusEvaluation of Concrete Bridge Behavior through Load Testing International Perspectives SP-323 Editors: Eva Lantsoght and
2、Pinar Okumus Discussion is welcomed for all materials published in this issue and will appear ten months from this journals date if the discussion is received within four months of the papers print publication. Discussion of material received after specified dates will be considered individually for
3、 publication or private response. ACI Standards published in ACI Journals for public comment have discussion due dates printed with the Standard. The Institute is not responsible for the statements or opinions expressed in its publications. Institute publications are not able to, nor intended to, su
4、pplant individual training, responsibility, or judgment of the user, or the supplier, of the information presented. The papers in this volume have been reviewed under Institute publication procedures by individuals expert in the subject areas of the papers. Copyright 2018 AMERICAN CONCRETE INSTITUTE
5、 38800 Country Club Dr. Farmington Hills, Michigan 48331 All rights reserved, including rights of reproduction and use in any form or by any means, including the making of copies by any photo process, or by any electronic or mechanical device, printed or written or oral, or recording for sound or vi
6、sual reproduction or for use in any knowledge or retrieval system or device, unless permission in writing is obtained from the copyright proprietors. On the cover: Load test of a cable stayed bridge over Wisok River, Poland. Photograph by Dr. K. Wilde. Printed in the United States of America Editori
7、al production: Susan K. Esper ISBN-13: 978-1-64195-007-7 First printing, May 2018Preface Load testing of concrete bridges is a practice with a long history. Historically, and particularly before the unification of design and construction practices through codes, load testing was performed to show th
8、e travelling public that a newly built bridge was safe for use. Nowadays, with the aging infrastructure and increasing loads in developed countries, load testing is performed mostly for existing structures either as diagnostic or proof tests. For newly built bridges, diagnostic load testing may be r
9、equired as a verification of design assumptions, particularly for atypical bridge materials, designs, or geometries. For existing bridges, diagnostic load testing may be used to improve analysis assumptions such as composite action between girders and deck, and contribution of parapets and other non
10、structural members to stiffness. Proof load testing may be used to demonstrate that a structure can carry a given load when there are doubts with regard to the effect of material degradation, or when sufficient information about the structure is lacking to carry out an analytical assessment. In rece
11、nt years, both researchers and practicing engineers worldwide have been refining load testing methods to balance accuracy, cost, effort, and time, and have been addressing increasingly complex structures and situations. To exchange international experiences among a global group of researchers and co
12、mpare load testing methods used internationally, ACI Committee 342 organized two sessions titled “Evaluation of Concrete Bridge Behaviour through Load Testing International Perspective” at the 2017 ACI Fall Convention in Anaheim, CA. This Special Publication contains several technical papers from ex
13、perts who presented their work at these sessions, in addition to papers submitted for publication only. This Special Publication combines contributions from different regions of the world, and in particular from Denmark, Germany, the Netherlands, Poland, Spain, Sweden, and from different regions in
14、the United States. The technical papers consider both theoretical and practical aspects of load testing, discuss different levels of bridge behaviour assessment such as visual inspections, modelling, and load testing. They introduce the reader to the codes and guidelines that may only be available i
15、n some countries. The impact of differences in live loads, design codes, reserve capacities, age of structures, construction practices between Europe, and North America on assessment of concrete bridges is reflected by case studies. Recent developments with regard to codes and standards around the w
16、orld for load testing are discussed, and open questions for future developments are highlighted by the authors. The wide variety of concrete bridge structures investigated included short- span reinforced concrete slab bridges, older reinforced concrete earth-filled arch bridges, bridges that have be
17、en damaged and/or retrofitted, and modern prestressed concrete bridges with new materials. Reasons why load testing is required also vary and include apparent damage, opportunities created by decommissioned bridges, necessity to carry super heavy vehicles, use of unique materials or geometry, and ab
18、sence of design plans. Results of testing bridges under static or dynamic service loads create knowledge on expected service performance and allow load ratings, while testing decommissioned bridges to near collapse or collapse reveals true capacity and the level of conservatism in design assumptions
19、. Several papers highlight vehicles or rigs designed specifically for reuse in standardized load testing. Others use recent technology such as 3-D scanning or digital image correlation to collect data, in addition to traditional methods such as strain gauges. As such, this Special Publication provid
20、es a global perspective on strategies for assessing the in-service performance of concrete bridges, and an overview of the state-of-the-art with regard to load testing internationally. Overall, in this Special Publication, authors from different backgrounds and geographical locations share their exp
21、eriences and perspectives on load testing and its impact on understanding concrete bridge behaviour. The coeditors, Dr. Pinar Okumus and Dr. Eva Lantsoght, are grateful for the contributions of the Special Publication authors and sincerely value the time and effort of the authors in preparing the pa
22、pers in this volume. Eva Lantsoght and Pinar Okumus Co-Editors TABLE OF CONTENTS SP-3231 Assessment of Slab Bridges through Proof Loading in the Netherlands Authors: Eva O. L. Lantsoght, Cor van der Veen, Ane de Boer, and Dick A. Hordijk SP-3232 Load Testing of Highly Skewed Concrete Bridges Authors
23、: Mauricio Diaz Arancibia and Pinar Okumus SP-3233 Rating of Concrete Road Bridges with Static Proof Load Tests Authors: Anna Halicka, Dick A. Hordijk, and Eva O.L. Lantsoght SP-3234 Bridge Load Testing and Monitoring for Super-Heavy Permit Loads Authors: Brett Commander and Jesse Sipple SP-3235 Rat
24、ing of Prestressed Concrete Adjacent Beam Bridges without Plans Authors: Carlos V. Aguilar, David V. Juregui, Brad D. Weldon, and Craig M. Newtson SP-3236 Bridge Load Testing In Germany Authors: Gregor Schacht, Frederik Wedel, and Steffen Marx SP-3237 Diagnostic Load Testing Of Concrete Bridges, Pri
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