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COM4: Concrete & concrete technology

Motivation

The overall motivation of the fib Commission 4 (COM4) is to make theoretical and practical developments in the field of concrete and concrete technology and to present these developments in an understandable and code-type formulated manner. COM4 positions itself at the forefront of new technologies and techniques by considering both fundamental research and practical issues.

Scope and objective of technical work

The aim of COM4 is to collect and to validate information on the properties and behaviour of concrete for structural applications subjected to various types of loading and environmental conditions. The commission focuses its attention both on traditional types of concrete, in particular under unusual conditions, and on new types of concrete and cementitious composites under all types of loading and condition. The properties of the concrete types considered should be formulated in such a way that it is possible to derive behavioural models and design recommendations for practical applications.

 

Jean Michel Torrenti
Commission Chair
Jean Michel Torrenti
Tor Arne Martius-Hammer
Deputy Chair
Tor Arne Martius-Hammer

First nameLast nameCountryAffiliation
DehnFrankGermanyKIT Karlsruher Institut für Technologie
HellandSteinarNorwayS Helland Konsult
WalravenJoostNetherlandsDutch fib Delegation
GeikerMetteNorwayNTNU - Trondheim Norwegian Univ.
MechtcherineViktorGermanyTechnical Univ. Dresden
Fernández-OrdóñezDavidSwitzerlandfib
MüllerHaraldGermanySMP Ingenieure im Bauwesen GmbH
GrünewaldSteffenNetherlandsGhent University
de SchutterGeertBelgiumGhent University
UedaTamonChinaShenzhen University
VandewalleLucieBelgiumKULeuven
di PriscoMarcoItalyPolitecnico di Milano
TorrentiJean MichelFranceUniv Gustave Eiffel
Wan-WendnerRomanBelgiumGhent University
TošićNikolaSpainUniversitat Politècnica de Catalunya
KanavarisFragkoulisUnited KingdomArup
CyrMartinFranceUniversité de Toulouse
Martius-HammerTorNorwaySINTEF AS
HaistMichaelGermany
JulioEduardoPortugalInstituto Superior Tecnico, Universidade de Lisboa
FerraraLiberatoItalyPolitecnico di Milano
Gálvez RuizJaimeSpainUniversidad Politecnica de Madrid
Di LuzioGiovanniItalyPolitecnico di Milano
BeushausenHans-DieterSouth AfricaUniversity of Cape Town
VidalThierryFranceLMDC (Laboratoire Matériaux et Durabilité des Constructions)

TG4.0 - Code-type Concrete Models

The first target of TG4.0 consists in developing an updated code-type presentation of the constitutive and durability related behaviour of structural concrete for inclusion in MC2020. The basis and point of origin of the AG’s/TG’s work is formed by the existing chapter 5.1 “Concrete” in MC2010. The work of TG4.0 comprises firstly a critical review and an updating of the existing models, further the implementation of new available concrete models, taking into consideration the increase of knowledge by research within the last decade. Major criteria for models being suited are their physical and thermo-dynamical soundness and accuracy as well as practical characteristics like simplicity and operationality. Further, emphasis is placed on concise explanatory notes and well-selected references which will be given as commentary (left-hand column) to the code text.

The second target of TG4.0 consists in preparing a background document (Bulletin) on the concrete models included in the chapter “Concretes” of MC2020. This document will give detailed background information together with the results of analyses and evaluations. Thus, the bulletin will represent a comprehensive summary of the relevant knowledge available to the members of the Task Group 4.0 at the time of its drafting. Moreover, the new bulletin will provide an essential basis for the development of future generations of code-type models related to the characteristics and the behaviour of structural concrete. Further it will offer insights into the complexity of the normative work related to code-type concrete modelling, leading to a better understanding and adequate appreciation of MC2020.

This new Bulletin will be an update of the Bulletin 70 “Code-type models for concrete behaviour – Background of MC2010”, which has been released parallel to MC2010 in 2013.


First nameLast nameCountryAffiliation
MüllerHaraldGermanySMP Ingenieure im Bauwesen GmbH
Fernández-OrdóñezDavidSwitzerlandfib
AndradeCarmenSpainCentre Internacional de Mètodes Numèrics en l’Ènginyeria (CIMNE)
BOUMAAZAMounaFranceVinci Construction
CurbachManfredGermanyTechnische Univ. Dresden
DancygierAvrahamIsraelTechnion-Israel Institute of Technology
DehnFrankGermanyKIT Karlsruher Institut für Technologie
FalikmanVyatcheslavRussian FederationRussian Structural Concrete Association
GehlenChristophGermanyTUM School of Engineering and Design
HaistMichaelGermany
HajekPetrCzech RepublicCzech Technical University in Prague
KanstadTerjeNorwayThe Norwegian Univ.of Science & Tech
KesslerSylviaGermanyHelmut-Schmidt-University/ University of the Federal Armed Forces Hamburg
LingerLionelFranceVinci Construction Grand Projets
LohausLudgerGermanyLeibniz Universität Hannover
MechtcherineViktorGermanyTechnical Univ. Dresden
OneschkowNadjaGermanyLeibniz University Hannover
ShimomuraTakumiJapanNagaoka Univ. of Technology
TasevskiDarkoSwitzerlandEmch+Berger AG Bern
TorrentiJean MichelFranceUniv Gustave Eiffel
TošićNikolaSpainUniversitat Politècnica de Catalunya
RahimiAmirGermanyBundesanstalt für Wasserbau
VogelMichaelGermanyKarlsruher Institut für Technologie (KIT) - Universität (Campus Süd)
UedaTamonChinaShenzhen University
WalravenJoostNetherlandsDutch fib Delegation
Wan-WendnerRomanBelgiumGhent University
ZhangPengChinaQingdao University of Technology
Häussler-CombeUlrichGermanyConsultant
KvitselVladislavGermanyKarlsruhe Institute of Technology
SpeckKerstinGermanyTechnische Universität Dresden
AcostaFernandoGermanyZüblin AG

TG4.1 - Fibre-reinforced concrete

Model Code 2020 has completed the draft related to the homogenization of FRC to RC and PC design rules,starting from the principles introduced for the first time in Model Code 2010.

Even if the proposed equations are now better harmonized with those controlling the behaviour of the common concrete structures, many aspects, remained out of the code.

These aspects have been already investigated mainly in relation to steel fibres, but we need to extend them to any type of fibres and to hybrid concretes. Moreover, the market has been strongly oriented to sustainability and to the introduction of new matrixes to reduce CO2 emissions and therefore we have to understand which effectiveness can be guaranteed with the adoption of these eco-mixes.

After the publication of the Bulletin 105, we need a special bulletin able to propose other examples of real applications, aimed at checking the effectiveness of the equations introduced and the advantages correlated to sustainability. These examples should be also analysed in other Commissions like the number 1, 3 and 7. When a good proposal concerning the indicated aspects will be achieved, the suggestion is to introduce it, updating the actual draft of Model Code, without waiting for the next edition. To this aim a special role should be played by databases: the database already started by Albert De La Fuente has to be developed, because it could help the evolution of future proposals, making them much more reliable. It has to be enlarged to UHPC where a special need of data is required.


First nameLast nameCountryAffiliation
VítekJanCzech RepublicMetrostav a. s.
VandewalleLucieBelgiumKULeuven
Fernández-OrdóñezDavidSwitzerlandfib
DehnFrankGermanyKIT Karlsruher Institut für Technologie
RossiPierreBrazil
MobasherBarzinUnited StatesArizona State University
PlizzariGiovanniItalyUniversity of Brescia
A. O. BarrosJoaquimPortugalUniversidade do Minho
BalázsGyörgy L.HungaryBudapest Univ. of Techn. & Economics
di PriscoMarcoItalyPolitecnico di Milano
DancygierAvrahamIsraelTechnion-Israel Institute of Technology
Parra-MontesinosGustavoUnited StatesUniversity of Michigan
LöfgrenIngemarUnited Kingdom
BanthiaNemkumarCanadaUniv. of British Columbia
BarraganBryanFranceOCV Chambery International
BoshoffBillySouth AfricaUniversity of Pretoria
KanstadTerjeNorwayThe Norwegian Univ.of Science & Tech
MassicotteBrunoCanadaEcole Polytechnique de Montréal
MinelliFaustoItalyUniversity of Brescia
Serna RosPedroSpainUniv. Politecnica de Valencia-Icitech
van den bosabNetherlandsNLyse
Vidal SarmientoElenaSpainBekaert
Gálvez RuizJaimeSpainUniversidad Politecnica de Madrid
Lancha FernandezJuan CarlosSpainNeos Maritime Consulting
LandeIngridNorwayUniversity of Agder
De la FuenteAlbertSpainUniversitat Politècnica de Catalunya
FehlingEkkehardGermanyIBB Fehling + Jungmann GmbH
ToutlemondeFrançoisFranceUniversité Gustave Eiffel
ZaniGiulioItalyPolitecnico di Milano
WalravenJoostNetherlandsDutch fib Delegation
SilfwerbrandJohanSwedenKTH Royal Institute of Technology
FerraraLiberatoItalyPolitecnico di Milano
HungerMartinGermanyMaster Builders Solutions Deutschland GmbH
ColomboMatteoItalyPolitecnico di Milano
KalnyMilanCzech RepublicPontex Ltd.
Özyurt ZihnioğluNilüferTurkeyBoğaziçi University
WinterbergRalfMalaysiaManaging Director
WOLFSébastienLuxembourgArcelorMittal Fibres
FosterStephenAustraliaUNSW Sydney
OettelVincentGermany
MechtcherineViktorGermanyTechnical Univ. Dresden
RuizGonzaloSpainETSI Caminos, C. y P. — Universidad de Castilla-La Mancha
Navarro-GregoriJuanSpainInstitute of Concrete Science and Technology (ICITECH), Universitat Politècnica de València
KarinskiYuriIsraelTechnion - Israel Institute of Technology
BurattiNicolaItalyUniversity of Bologna
VrijdaghsRutgerBelgiumKU Leuven
IentileSilviaFranceMAST- EMGCU Laboratory
JonesTonyUnited KingdomConcrete centre
MuttoniAurelioSwitzerlandÉcole polytechnique fédérale de Lausanne (EPF Lausanne)
Bigaj-van VlietAgnieszkaNetherlandsTNO - Buildings, Infrastructures and Maritime
SoutsosMariosUnited Kingdomn/a
CaverzanAlessioNetherlandsDirectorate-General Joint Research Centre (JRC)
MarkPeterGermanyRuhr-Universität Bochum
VickersPaulUnited KingdomThorpe Precast
NanaSerge AugusteFranceHolcim Innovation Center
BocchinoGabriele DavidItaly
MartinelliPaoloItalyPolitecnico di Milano
TorrentiJean MichelFranceUniv Gustave Eiffel
Martius-HammerTorNorwaySINTEF AS
Wan-WendnerRomanBelgiumGhent University
ClarkeToddAustraliaBarChip
ShiZhanchongItalyPolitecnico di Milano
SeguraLuisUruguayFacultad de Ingeniería - Universidad de la República
VandevyvereBrechtBelgiumFaculty of Engineering Technology
BernardErikAustraliaVictoria University
BennettEdwardAustralia
GirginZehra CananTurkeyYıldız Technical University
CepokAgnieszkaPoland
AireCarlosMexicoUNAM
BokernJürgenGermany
FigueiredoAntonioBrazilUniversity of São Paulo

TG4.3 - Structural design with flowable concrete

Flowable concrete (highly flowable, self-compacting and/or self-levelling) has evolved from a special type to a commonly applied building material. fib Task Group 4.3 (TG4.3) considers three aspects of flowable concrete (FC) for structural design: material properties, production effects and structural boundary conditions. The flow of concrete (initiated by some vibration and/or the weight of concrete) can affect the structural characteristics of hardening or hardened concrete. The mixture composition has to be adjusted and optimised in order to obtain a high flowability. TG4.3 aims at promoting the application of flowable concrete, improving and adapting the concrete design and the production technology and its implementation in guidelines and codes.

The technical work of TG4.3 considers the following aspects:

  • mechanical/structural characteristics;
  • local effects;
  • effects of orientation/segregation due to the flow/vibration;
  • mixture composition;
  • production technique.

Research findings will be compiled and analysed in order to provide guidance for designers and users of concrete structures with FC. Areas of structural design where FC differs from traditional vibrated concrete (TC) have to be identified.


Steffen Grünewald
Convener
Steffen Grünewald
Liberato Ferrara
Co-Convener
Liberato Ferrara

First nameLast nameCountryAffiliation
DehnFrankGermanyKIT Karlsruher Institut für Technologie
FerraraLiberatoItalyPolitecnico di Milano
BehloulMouloudFranceLafarge
GettuRavindraIndiaIndian Institute of Technology Madras
ObladenBasNetherlandsStrukton Group
BillbergPeterSwedenSträngbetong
MartinieLaetitiaFranceINSA
RousselNicolasFranceIFSTTAR
FreytagBernhardAustriaTechnische Universität Graz
SonebiMohamedIrelandQueen’s University Belfast
StähliPatrickSwitzerlandConcretum Construction Science AG
LaranjeiraFilipeSpainUniv. Politecnica de Catalunya
BertramGuidoGermanyGrawe + Bertram Ingenieure
LeemannAndreasSwitzerlandEMPA
TaylorSusanIrelandQueen's University Belfast
NunesSandraPortugalUniversity of Porto
SpangenbergJonDenmarkTechnical University of Denmark
FischerGregorDenmarkTechnical University of Denmark
WalravenJoostNetherlandsDutch fib Delegation
GeikerMetteNorwayNTNU - Trondheim Norwegian Univ.
KanstadTerjeNorwayThe Norwegian Univ.of Science & Tech
StangHenrikDenmarkUniversity of Denmark
ZilchKonradGermanyTU München
GrünewaldSteffenNetherlandsGhent University
SchmidtWolframGermanyBAM - Bundesanstalt für - Materialforschung und -prüfung
CairnsJohnUnited KingdomHeriot-Watt University
Fernández-OrdóñezDavidSwitzerlandfib
BarraganBryanFranceOCV Chambery International
Den UijlJoopNetherlands
BeitzelHaraldGermanyInst. für Bauverfahrens- und Umwelttechnik
SatoYasuhikoJapanWaseda University
VandewalleLucieBelgiumKULeuven
A. O. BarrosJoaquimPortugalUniversidade do Minho
di PriscoMarcoItalyPolitecnico di Milano
Martius-HammerTorNorwaySINTEF AS

TG4.4 - Restoration of heritage in exposed concrete

The activity of Task Group 4.4 is focused in aesthetics of concrete surfaces. The topic is relevant for all exposed concrete structures but holds particular importance in the case of buildings designed by well-known architects. Previous work by this Task Group addressed the issues that need to be considered regarding concrete mix design and casting, aiming at obtaining exposed concrete surfaces with homogenous appearance. A state-of-the-art technical report was prepared with recommendations and guidelines.

Since existing exposed concrete structures are in direct contact with the environment, they are prone to experience degradation faster, and since appearance is a main key-issue, maintenance of this type of structures needs to be properly addressed. In addition, many of these structures have a unique cultural (historical, architectural, technical, other) value, being therefore classified as heritage. For this reason, the repair techniques adopted for current concrete structures may not be adequate in some situations and restoration methods must be adopted instead.

TG 4.4 future work will address the issues that need to be considered regarding conservation and restoration of the built heritage in exposed concrete. The main goal of the Task Group is to publish an fib guide of good practice, including recommendations and guidelines, as well as successful examples that can be assumed as reference case studies.


First nameLast nameCountryAffiliation
Fernández-OrdóñezDavidSwitzerlandfib
JulioEduardoPortugalInstituto Superior Tecnico, Universidade de Lisboa
ValencaJónatasPortugalLNEC
Sousa CostaHugo SérgioPortugalISEC - Institute of Engineering of Polytechnic Institute of Coimbra
ArmbrusterRobertUnited StatesThe Armbruster Company, Inc.
FranzoniElisaItalyUniversity of Bologna
Marie-victoireElisabethFranceLaboratoire de Recherche des Monuments Historiques
BouichouMyriamFranceLaboratoire de Recherche des Monuments Historiques
BouteillerVéroniqueFranceUniversity Gustave Eiffel
AndradeCarmenSpainCentre Internacional de Mètodes Numèrics en l’Ènginyeria (CIMNE)
DevauxClaudiaFrancedda devaux & devaux architects
TostõesAnaPortugalUniversidade de Lisboa
MüllerHaraldGermanySMP Ingenieure im Bauwesen GmbH
GeorgiouAntroulaAustriaCarinthia University of Applied Sciences

TG4.5 - Time-dependent Behavior of Concrete

The primary objective of the task group is to identify limiting aspects during the design of new or assessment of existing structures related to predicting the time-dependent (mechanical) behavior of “new” but also “traditional” concrete types. Based on the identified short-comings the task group will initiate literature reviews, compile/ update consistent databases and update existing model formulations. Where possible the TG will make use of the data already available in the scientific literature. Where this is not the case, the task group will strive to develop research strategies and coordinate research efforts by its members, supported by national or international research funds.

The task group plans to develop databases and calibrated prediction models for the time-dependent mechanical properties of cast concrete including:

  • Maturity vs. time concepts, applicable to early age and multi-decade predictions
  • Development of compressive and tensile strength as function of maturity/ time;
  • Development of Young’s modulus as function of maturity/ time;
  • Development of fracture energy as function of maturity/ time;
  • Development of creep and shrinkage as function of maturity/ time;
  • Empirical relationship between mechanical properties and compressive strength as function of maturity/ time;
  • Development of stress-strain diagram as function of maturity/ time;
  • Transport of liquids and gases;
  • Guidance for the coupled hygro-thermal chemo-mechanical analysis of concrete with relevance to e.g. mass concrete or certain structural components prone to early-age cracking;
  • Guidance for the time-dependent nonlinear (fracture mechanical) analysis of concrete including advanced constitutive models and strain rate effects;
  • Time-dependent resistance of concrete subject to sustained load
  • Time-dependent resistance of concrete subject to fatigue;

First nameLast nameCountryAffiliation
YeGuangNetherlandsDelft University of Technology
HaistMichaelGermany
Fernández-OrdóñezDavidSwitzerlandfib
Wan-WendnerRomanBelgiumGhent University
McDonnellDaraAustraliaArup
MüllerHaraldGermanySMP Ingenieure im Bauwesen GmbH
VítekJanCzech RepublicMetrostav a. s.
TorrentiJean MichelFranceUniv Gustave Eiffel
ShimomuraTakumiJapanNagaoka Univ. of Technology
TasevskiDarkoSwitzerlandEmch+Berger AG Bern
Pérez CaldenteyAlejandroSpainFHECOR Ingenieros Consultores/Universidad Politécnica de Madrid
TošićNikolaSpainUniversitat Politècnica de Catalunya
CervenkaJanCzech RepublicCervenka Consulting Ltd
PatelRaviGermanyInstitute of Building materials (IMB)
OneschkowNadjaGermanyLeibniz University Hannover
StackEamonIrelandBanagher Precast
Di LuzioGiovanniItalyPolitecnico di Milano
BenboudjemaFaridFranceENS Paris-Saclay, Université Paris-Saclay
CaronRichardGermanyKIT
KlausenAnjaNorwayNTNU
MengaAntoniaNorwayNTNU
Najeeb ShariffMohammadIndiaIndian Institute of Technology Bombay
SchlickeDirkAustriaTechnische Universität Graz
VidalThierryFranceLMDC (Laboratoire Matériaux et Durabilité des Constructions)
MasoeroEnricoItalyPolitecnico di Milano
GarzónJuanNetherlandsTNO
HamedEhabAustraliaUNSW Australia
SchulzMauroBrazil
RanziGianlucaAustralia
WangYilinBelgium
HavlasekPetrCzech Republic

TG4.7 - Structural Applications of Recycled Aggregate Concrete – Properties, Modeling, and Design

The main objective of the TG is to formulate design recommendations for the structural use of RAC. This will take the form of proposing new or adjusting existing expressions and models for mechanical and structural properties of reinforced and prestressed concrete structures.

To achieve this goal, the TG will first perform a comprehensive critical review of literature alongside a preparation of databases of experimental results regarding mechanical and structural properties of RAC. Where necessary and possible, identified gaps in existing results will be complemented by new studies of TG members within existing or new research projects. Based on this work, the TG will formulate expressions and models for the following:

  • Physical properties of RAC – density, water absorption, permeability
  • Mechanical properties – compressive strength, tensile strength, modulus of elasticity, stress–strain relationship, fracture energy, shrinkage, creep
  • Durability-related properties – carbonation resistance, chloride ingress, freeze-thaw resistance, chemical attack
  • Structural behavior – flexural strength, shear strength, axial strength, punching strength, seismic resistance, fire resistance, deformation, cracking, bond and anchorage
  • Fire resistance of RAC and RAC structures – resistance under fire and residual resistance after exposure to elevated temperatures of RAC and reinforced and prestressed RAC members

Marco Pepe
Convener
Marco Pepe
Jean-Michel Torrenti
Co-Convener
Jean-Michel Torrenti

First nameLast nameCountryAffiliation
TošićNikolaSpainUniversitat Politècnica de Catalunya
TorrentiJean MichelFranceUniv Gustave Eiffel
Fernández-OrdóñezDavidSwitzerlandfib
MüllerHaraldGermanySMP Ingenieure im Bauwesen GmbH
NoguchiTakafumiJapanThe University of Tokyo
DehnFrankGermanyKIT Karlsruher Institut für Technologie
PachecoJoão NunoPortugalCERIS/ IST, University of Lisbon
BeushausenHans-DieterSouth AfricaUniversity of Cape Town
Wan-WendnerRomanBelgiumGhent University
IgnjatovićIvanSerbiaUniversity of Belgrade
De la FuenteAlbertSpainUniversitat Politècnica de Catalunya
NedeljkovićMarijaNetherlandsRijkswaterstaat
KuramaYahyaFranceUniv. of Notre Dame
JiabinLiBelgiumKU Leuven
Ben FrajAmorFranceCEREMA
WardehGeorgeFranceUn. de Cergy-Pontoise
StochinoFlavioItalyUniversità di Cagliari
EtxeberriaMirenSpainUPC Edu
Seara-PazSindySpainUniversidade a Coruña
Velay-LizancosMirianUnited StatesPurdue University
Toledo FilhoRomildoBrazilFederal University of Rio de Janeiro
FerraraLiberatoItalyPolitecnico di Milano
Al-MartiniSamerUnited Arab EmiratesAbu Dhabi University
GhorbelElhemFranceCY Cergy Paris university
Gonzalez-FonteboaBelénSpainUniversidade de Coruña
MartinelliEnzoItalyUniversity of Salerno
PepeMarcoItalyUniversity of Salerno
PodroužekJanCzech RepublicBrno University of Technology
SabouniReemUnited Arab EmiratesAbu Dhabi University
MarinkovićSnežanaSerbiaUniversity of Belgrade
AbbasAliUnited KingdomUniversity of East London
RobertFabienneFranceCERIB
KandasamiSivakumarIndiaL&T Construction
KimBoksunUnited KingdomUniversity of Plymouth
BompaDan V.United KingdomUniversity of Surrey
AlamShahriaCanadaUniversity of British Columbia
SlánskýBohuslavCzech RepublicSkanska
SikoraPawelPolandWest Pomeranian University of Technology in Szczecin
BraymandSandrineFranceUniversity of Strasbourg
MechlingJean MichelFranceUniversité de Lorraine
ZhaoZengfengChinaTongji University
Martinello CarlessoDéboraBrazil
JosaIreneUnited KingdomUniversity College London (UCL)
FotiDoraItalyPolitecnico di Bari
SlobbeArthurNetherlandsTNO
GarzónJuanNetherlandsTNO
HassanKhaledQatarIRD (Infrastructure Research & Development)
CovielloCristiano GiuseppeItaly
MenegattiLucasBrazilUFRJ
LouroAna SofiaPortugalLNEC
LiuKaihuaChina
DavolioMarcoItalyPolitecnico di Milano
AdessinaJean AyodéléFranceCerema
ChakrabortySouravIndiaIndian Institute of Technology Hyderabad
SubramaniamKVLIndiaIndian Institute of Technology Hyderabad
BorgRuben PaulMaltaUniversity of Malta
SinningAnnkathrinGermanyRWTH Aachen University
HeggerJosefGermanyRWTH Aachen
ClassenMartinGermanyRWTH Aachen University
StengelThorstenGermany
WildPeterGermanyMunich University of applied sciences
KustermannAndreaGermanyMunich University of applied sciences
AndradeJairoBrazilGraduate Program in Materials and Engenheering Technology
LiWenguiAustralia
CoronelliDarioItalyPolitecnico di Milano
CarrazedoRicardoBrazilUniversidade São Paulo
NikolićJelenaSerbiaUniversity of Belgrade
KostićSvetlanaSerbiaUniversity of Belgrade
RenQifanPortugalUniversity of Lisbon
KanavarisFragkoulisUnited KingdomArup
Castro quispeVivianaItalyPOLITECNICO DI MILANO
Di LuzioGiovanniItalyPolitecnico di Milano

TG4.8 - Low-carbon concrete structures

Decreasing the environmental impact of concrete structures is an objective put forward by almost all the actors involved in the domain of construction. Although cementitious materials intrinsically involve low embodied energy, their use in large volumes in worldwide construction lead to approximately 8% of global CO2 emissions. Portland cement is the main constituent responsible for the environmental impacts caused by the life cycle of concrete, as it generates on average more than 800 kg CO2/t of clinker.

The task group will have two main objectives:

1- Identify the different ways to obtain low-CO2 concretes among the different possible routes:

  • Evaluate which ones are rapidly reachable and how far we are from an universal utilization of these concretes.
  • Define the work to carry out to bring these concrete at an industrial level.
  • Estimate the scientific, technical and economical obstacles and challenges that could retard the implementation and acceptances of such concretes.

2- Evaluate the consequences of these low-CO2 concretes on the design of concrete structures, in terms of:

  • Durability, for instance the impact of these new concretes on carbonation and chloride ingress, the most widespread problems facing reinforced concrete worldwide.
  • Structural design, with the verification of the applicability of the international codes (Eurocodes…). The part concerning creep and shrinkage will be developed in the new COM4/TG Time dependent behavior of concrete.

Martin Cyr
Convener
Martin Cyr
Michael Haist
Co-Convener
Michael Haist

First nameLast nameCountryAffiliation
CyrMartinFranceUniversité de Toulouse
Fernández-OrdóñezDavidSwitzerlandfib
HaistMichaelGermany
TorrentiJean MichelFranceUniv Gustave Eiffel
MatsudaTakuJapanSUMITOMO MITSUI CONSTRUCTION CO., LTD
RalliZoiCanadaLassonde School of Engineering
ZhaoZengfengChinaTongji University
AbbasAliUnited KingdomUniversity of East London
Al-NaimiHasanainUnited KingdomUniversity of East London
BishnoiShashankIndiaIndian Institute of Technology Delhi
BOUMAAZAMounaFranceVinci Construction
HabertGuillaumeSwitzerlandETH Zurich
Martius-HammerTorNorwaySINTEF AS
IdirRachidaFranceCerema
KanavarisFragkoulisUnited KingdomArup
Lohmann​TimUnited KingdomWentworth House Partnership
NoguchiTakafumiJapanThe University of Tokyo
Tagnit HamouArezkiCanadaSherbrooke University
Von Greve-DierfeldStefanieSwitzerlandOffice fédéral des routes OFROU
WalkleyBrantUnited KingdomUniversity of Sheffield
Wan-WendnerRomanBelgiumGhent University
JulioEduardoPortugalInstituto Superior Tecnico, Universidade de Lisboa
Sousa CostaHugo SérgioPortugalISEC - Institute of Engineering of Polytechnic Institute of Coimbra
do CarmoRicardoPortugalISEC - Coimbra Institute of Engineering
VacherJean-PhilippeFranceMG Group
HafezHishamUnited KingdomUniversity of Leeds
UngerJörgGermanyBundesanstalt für Materialforschung und -prüfung, BAM
ScrivenerKarenSwitzerlandEPFL
KesslerSylviaGermanyHelmut-Schmidt-University/ University of the Federal Armed Forces Hamburg
JOHNVANDERLEYBrazilPolytechnic School
Moretti SanchezLeandroCanadaUniversity of Ottawa
CoffettiDennyItalyUniversity of Bergamo
ClaußFelixGermany
HamdallahMohammedPortugalUniversity of Porto (MBUILD)
SpirklSebastianGermany
SeguraIgnacioSpain