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Kategorie szczegółowe BISAC

Compressive Force-Path Method: Unified Ultimate Limit-State Design of Concrete Structures

ISBN-13: 9783319004877 / Angielski / Twarda / 2013 / 221 str.

D. Michael Kotsovos; Michael D. Kotsovos
Compressive Force-Path Method: Unified Ultimate Limit-State Design of Concrete Structures Kotsovos, Michael D. 9783319004877 Springer - książkaWidoczna okładka, to zdjęcie poglądowe, a rzeczywista szata graficzna może różnić się od prezentowanej.

Compressive Force-Path Method: Unified Ultimate Limit-State Design of Concrete Structures

ISBN-13: 9783319004877 / Angielski / Twarda / 2013 / 221 str.

D. Michael Kotsovos; Michael D. Kotsovos
cena 201,24
(netto: 191,66 VAT:  5%)

Najniższa cena z 30 dni: 192,74
Termin realizacji zamówienia:
ok. 16-18 dni roboczych.

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This book presents a method which simplifies and unifies the design of reinforced concrete (RC) structures and is applicable to any structural element under both normal and seismic loading conditions. The proposed method has a sound theoretical basis and is expressed in a unified form applicable to all structural members, as well as their connections. It is applied in practice through the use of simple failure criteria derived from first principles without the need for calibration through the use of experimental data. The method is capable of predicting not only load-carrying capacity but also the locations and modes of failure, as well as safeguarding the structural performance code requirements. In this book, the concepts underlying the method are first presented for the case of simply supported RC beams. The application of the method is progressively extended so as to cover all common structural elements. For each structural element considered, evidence of the validity of the proposed method is presented together with design examples and comparisons with current code specifications. The method has been found to produce design solutions which satisfy the seismic performance requirements of current codes in all cases investigated to date, including structural members such as beams, columns, and walls, beam-to-beam or column-to-column connections, and beam-to-column joints.

Kategorie:
Technologie
Kategorie BISAC:
Technology & Engineering > Civil - General
Technology & Engineering > Materials Science - General
Technology & Engineering > Construction - Heating, Ventilation & Air Conditioning
Wydawca:
Springer
Seria wydawnicza:
Engineering Materials
Język:
Angielski
ISBN-13:
9783319004877
Rok wydania:
2013
Wydanie:
2014
Numer serii:
000089500
Ilość stron:
221
Waga:
0.51 kg
Wymiary:
23.39 x 15.6 x 1.42
Oprawa:
Twarda
Wolumenów:
01

Reappraisal of concepts underlying reinforced concrete design.- The concept of the compressive-force path.- Modelling of simply-supported beams.- Design of simply supported beams.- Design for punching of flat slabs.- Design of skeletal structures with beam-like elements.- Earthquake-resistant design.- Design examples.

Michael D. Kotsovos is full professor of Civil and Building Engineering, and Director of the Laboratory of Reinforced Concrete Structures at the National Technical University of Athens, Greece.

This book presents a method which simplifies and unifies the design of reinforced concrete (RC) structures and is applicable to any structural element under both normal and seismic loading conditions. The proposed method has a sound theoretical basis and is expressed in a unified form applicable to all structural members, as well as their connections. It is applied in practice through the use of simple failure criteria derived from first principles without the need for calibration through the use of experimental data. The method is capable of predicting not only load-carrying capacity but also the locations and modes of failure, as well as safeguarding the structural performance code requirements.
In this book, the concepts underlying the method are first presented for the case of simply supported RC beams. The application of the method is progressively extended so as to cover all common structural elements. For each structural element considered, evidence of the validity of the proposed method is presented together with design examples and comparisons with current code specifications. The method has been found to produce design solutions which satisfy the seismic performance requirements of current codes in all cases investigated to date, including structural members such as beams, columns, and walls, beam-to-beam or column-to-column connections, and beam-to-column joints.



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