SlideShare una empresa de Scribd logo
1 de 40
Abbas Jamani
(SD0510)
CEPT University , Ahmedabad
 Introduction
 Properties of LWC
 Applications of LWC
 Advantages and disadvantages
 Case study
 conclusion
 References
 Lightweight concrete can be defined as a type a
type of concrete which includes an expanding
agent in that it increases the volume of the
mixture while giving additional qualities and
lessened the dead weight.
 It is lighter than the conventional concrete.
 The use of lightweight concrete has been
widely spread across countries such as USA,
United Kingdom and Sweden.
Structural lightweight concrete
3
 It was first introduced by the Romans in the
second century where ‘The Pantheon’ has
been constructed using pumice, the most
common type of aggregate used.
 The building of ‘The Pantheon’ of lightweight
concrete material is still standing eminently
in Rome until now for about 18 centuries as
shown in Figure . It shows that the lighter
materials can be used in concrete .
Structural lightweight concrete
4
structural lightweight concrete
5
The Pantheon
 Compressive strength is the primary physical
property of concrete and is the one most
used in design.
 Fourteen trial mixes had been prepared
during the research and from the results, the
mixture with the highest compressive
strength was used.
Structural lightweight concrete
6
Structural lightweight concrete
7
Compressive strength at different densities
Structural lightweight concrete
8
Compressive strength at different percentage of foam
Structural lightweight concrete
9
Compressive strength at different w/c ratio
Structural lightweight concrete
10
Compressive strength at 28 days
Structural lightweight concrete
11
Compressive strength for different % of foam
Structural lightweight concrete
12
Compressive strength at different w/c ratio
Structural lightweight concrete
13
 Water absorption is an important factor due
to the porous structure of the aerated
lightweight concrete.
 The water absorption test is done using the
samples prepared at the age of 28 days.
 The purpose of this test is to identify the
capability of the concrete to absorb water.
Structural lightweight concrete
14
Structural lightweight concrete
15
Water absorption at different percentage of foam
structural lightweight concrete
16
Water absorption at different foam agent and water ratio
Structural lightweight concrete
17
Moisture content at different percentage of foam
Structural lightweight concrete
18
Density of wet and hardened concrete
 As with normal-weight concrete, entrained
air in structural lightweight concrete ensures
resistance to freezing and thawing and to
deicer applications.
 It also improves workability, reduces bleeding
and segregation, and may compensate
for minor grading deficiencies in the
aggregate.
Structural lightweight concrete
19
 The amount of entrained air should be
sufficient to provide good workability to the
plastic concrete and adequate freeze-thaw
resistance to the hardened concrete.
 Air contents are generally between 5% and
8%, depending on the maximum size of
coarse aggregate used and the exposure
conditions.
Structural lightweight concrete
20
 Due to lower aggregate density, structural
lightweight concrete does not slump as much
as normal-weight concrete with the same
workability.
 It is seldom necessary to exceed slumps of
125 mm (5 in.) for normal placement of
structural lightweight concrete.
Structural lightweight concrete
21
 As with normal-weight concrete, vibration
can be used effectively to consolidate
lightweight concrete; the same frequencies
commonly used for normal-density concrete
are recommended.
 Excessive vibration causes segregation by
forcing large aggregate particles to the
surface.
Structural lightweight concrete
22
Structural lightweight concrete
23
Thermal resistance of concrete vs density
 Lightweight concrete has been used since the
eighteen centuries by the Romans.
 The lightweight concrete was also used in
construction during the First World War. The
United States used mainly for shipbuilding.
 It is widely used as loose-fill insulation in
masonry construction where it enhances fire
ratings, reduces noise transmission, does not
rot and termite resistant.
Structural lightweight concrete
24
 It is also used for vessels, roof decks and
other applications.
Structural lightweight concrete
25
Structural lightweight concrete
26
 Rapid and relatively simple construction.
 Economical in terms of transportation as well
as reduction in manpower.
 Significant reduction of overall weight results
in saving structural frames, footing or piles.
 Most of lightweight concrete have better
nailing and sawing properties than heavier
and stronger conventional concrete.
 Very sensitive with water content in the
mixtures.
 Difficult to place and finish because of the
porosity and angularity of the aggregate.
 Mixing time is longer than conventional
concrete to assure proper mixing.
Structural lightweight concrete
27
 Wellington stadium.
 Location: New Zealand.
 Capacity of the stadium : 40000
 Architects : Hok-Lobb (brisbane),Warren &
Mahoney.
 Structure consultants :Holmes Consulting
Group
 Contractor : Fletcher Construction, Ltd.
 LWA Supplier :TXI -PacificCustom Materials,
Inc. (California).
Structural lightweight concrete
28
 The stadium is sited in a prominent location
on the harbour edge, in close proximity to the
main Wellington railway station, the
Parliament buildings.
 The site is exposed to wind blown sea spray
and is located just a few hundred metres from
one of the country's most active and violent
seismic fault lines.
Structural lightweight concrete
29
 The structural layout consists of an oval bowl
around the playing field (roofed only over the
spectator seating) and is connected by a two
level open walkway and parking building to
the railway station.
 At the southern end of the oval there is a
four-storey administration building that also
forms part of the main stand .
Structural lightweight concrete
30
Structural lightweight concrete
31
The completed stadium
 Poor foundation condition.
 Severe earthquake forces.
 Durability.
 Rapid construction.
 Space utilization.
 Reduced site work.
 Innovative spirit.
Structural lightweight concrete
32
 The use of lightweight concrete was initially
proposed by Stresscrete, the precast
concrete supplier.
 But it was also readily accepted by the project
structural consultants, Holmes Consulting
Group, who were impressed by the potential
of the product to reduce cost and responded
enthusiastically to the challenge of a new
material.
Structural lightweight concrete
33
 In the final analysis, the choice was between a
structure of lightweight concrete, or one of
steel. Normal weight concrete was ruled out
early in the final design process.
Structural lightweight concrete
34
Structural lightweight concrete
35
 Compressive strength : 44 MPa.
 Density : 1845 kg/m^3.
 Modulus Of Elasticity : 19 GPa.
 Creep : 2.3.
Failure On Expansive Soils 36
 The initial findings have shown that the
lightweight concrete has a desirable strength
to be an alternative construction material for
the industrialized building system.
 The strength of aerated lightweight concrete
are low for lower density mixture. This
resulted in the increment of voids throughout
the sample caused by the foam.
Structural lightweight concrete
37
 The foamed lightweight concrete is not
suitable to be used as non-load bearing as the
compressive strength is 27% less than
recommended. The compressive strength is
accepted to be produced as non-load bearing
structure.
Structural lightweight concrete
38
Structural lightweight concrete
39
 Report on research project on lightweight
concrete.
 Formed Lightweight Concrete.
www.pearliteconcreteforrorepair.com
 A.M Neville (1985)
Properties of concrete
 Cellular LightweightConcrete, Plan City/NCS
LLC.
www. Neoporsystem.com
Thank you

Más contenido relacionado

Similar a structural Lightweight Concrete.ppt

Lightweight and heavyweight concrete
Lightweight and heavyweight concrete Lightweight and heavyweight concrete
Lightweight and heavyweight concrete Nawroz University
 
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...IRJET Journal
 
Development of mix design for high strength Concrete with Admixtures
Development of mix design for high strength Concrete with AdmixturesDevelopment of mix design for high strength Concrete with Admixtures
Development of mix design for high strength Concrete with AdmixturesIOSR Journals
 
advanced concrete technology.docx
advanced concrete technology.docxadvanced concrete technology.docx
advanced concrete technology.docxEr. Bam Bhandari
 
ch01, design of reinforced concrete.pptx
ch01, design of reinforced concrete.pptxch01, design of reinforced concrete.pptx
ch01, design of reinforced concrete.pptxSaidrashedHosayni
 
Advanced Concrete Technic Erbil Polytechnic University
Advanced Concrete Technic Erbil Polytechnic UniversityAdvanced Concrete Technic Erbil Polytechnic University
Advanced Concrete Technic Erbil Polytechnic UniversityBahzad5
 
Aci structural concrete_design
Aci structural concrete_designAci structural concrete_design
Aci structural concrete_designHammam El Meseiry
 
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma THE NORTHCAP UNIVERSITY
 
IRJET- Experimental Study of Compressive Strength on Foam Concrete with Q...
IRJET-  	  Experimental Study of Compressive Strength on Foam Concrete with Q...IRJET-  	  Experimental Study of Compressive Strength on Foam Concrete with Q...
IRJET- Experimental Study of Compressive Strength on Foam Concrete with Q...IRJET Journal
 
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...IRJET Journal
 
Special concrete in concrete technology
Special concrete in concrete technologySpecial concrete in concrete technology
Special concrete in concrete technologySunny Saha
 
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016Dr.Subramanian Narayanan
 

Similar a structural Lightweight Concrete.ppt (20)

Lightweight and heavyweight concrete
Lightweight and heavyweight concrete Lightweight and heavyweight concrete
Lightweight and heavyweight concrete
 
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...
IRJET - A Review Paper on Comparative Study of Lightweight Concrete and Reinf...
 
Special Concrete - Concrete Technology
Special Concrete - Concrete TechnologySpecial Concrete - Concrete Technology
Special Concrete - Concrete Technology
 
Light weight concrete
Light weight concreteLight weight concrete
Light weight concrete
 
Development of mix design for high strength Concrete with Admixtures
Development of mix design for high strength Concrete with AdmixturesDevelopment of mix design for high strength Concrete with Admixtures
Development of mix design for high strength Concrete with Admixtures
 
advanced concrete technology.docx
advanced concrete technology.docxadvanced concrete technology.docx
advanced concrete technology.docx
 
ch01, design of reinforced concrete.pptx
ch01, design of reinforced concrete.pptxch01, design of reinforced concrete.pptx
ch01, design of reinforced concrete.pptx
 
Special-concretes
Special-concretesSpecial-concretes
Special-concretes
 
Advanced Concrete Technic Erbil Polytechnic University
Advanced Concrete Technic Erbil Polytechnic UniversityAdvanced Concrete Technic Erbil Polytechnic University
Advanced Concrete Technic Erbil Polytechnic University
 
Aci , structural concrete design
Aci , structural concrete designAci , structural concrete design
Aci , structural concrete design
 
6. CMG_Durability _ concrete.pptx
6. CMG_Durability _ concrete.pptx6. CMG_Durability _ concrete.pptx
6. CMG_Durability _ concrete.pptx
 
Aci structural concrete_design
Aci structural concrete_designAci structural concrete_design
Aci structural concrete_design
 
ACT_unit2_1.pdf
ACT_unit2_1.pdfACT_unit2_1.pdf
ACT_unit2_1.pdf
 
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
Lecture 1- Light Weight Construction Materials by Brig. S.K. Sharma
 
F012533444
F012533444F012533444
F012533444
 
Concrete
Concrete Concrete
Concrete
 
IRJET- Experimental Study of Compressive Strength on Foam Concrete with Q...
IRJET-  	  Experimental Study of Compressive Strength on Foam Concrete with Q...IRJET-  	  Experimental Study of Compressive Strength on Foam Concrete with Q...
IRJET- Experimental Study of Compressive Strength on Foam Concrete with Q...
 
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...
An Experimental Investigation on Light Weight Foam Cement Blocks with Quarry ...
 
Special concrete in concrete technology
Special concrete in concrete technologySpecial concrete in concrete technology
Special concrete in concrete technology
 
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016
How to Guarantee Design-Life of Concrete Structures-MasterBuilder-July 2016
 

Último

DM Pillar Training Manual.ppt will be useful in deploying TPM in project
DM Pillar Training Manual.ppt will be useful in deploying TPM in projectDM Pillar Training Manual.ppt will be useful in deploying TPM in project
DM Pillar Training Manual.ppt will be useful in deploying TPM in projectssuserb6619e
 
Crystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxCrystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxachiever3003
 
Input Output Management in Operating System
Input Output Management in Operating SystemInput Output Management in Operating System
Input Output Management in Operating SystemRashmi Bhat
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionMebane Rash
 
Main Memory Management in Operating System
Main Memory Management in Operating SystemMain Memory Management in Operating System
Main Memory Management in Operating SystemRashmi Bhat
 
Configuration of IoT devices - Systems managament
Configuration of IoT devices - Systems managamentConfiguration of IoT devices - Systems managament
Configuration of IoT devices - Systems managamentBharaniDharan195623
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AIabhishek36461
 
multiple access in wireless communication
multiple access in wireless communicationmultiple access in wireless communication
multiple access in wireless communicationpanditadesh123
 
Katarzyna Lipka-Sidor - BIM School Course
Katarzyna Lipka-Sidor - BIM School CourseKatarzyna Lipka-Sidor - BIM School Course
Katarzyna Lipka-Sidor - BIM School Coursebim.edu.pl
 
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTION
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTIONTHE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTION
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTIONjhunlian
 
National Level Hackathon Participation Certificate.pdf
National Level Hackathon Participation Certificate.pdfNational Level Hackathon Participation Certificate.pdf
National Level Hackathon Participation Certificate.pdfRajuKanojiya4
 
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort serviceGurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort servicejennyeacort
 
Engineering Drawing section of solid
Engineering Drawing     section of solidEngineering Drawing     section of solid
Engineering Drawing section of solidnamansinghjarodiya
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...121011101441
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - GuideGOPINATHS437943
 
Crushers to screens in aggregate production
Crushers to screens in aggregate productionCrushers to screens in aggregate production
Crushers to screens in aggregate productionChinnuNinan
 
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...Erbil Polytechnic University
 

Último (20)

DM Pillar Training Manual.ppt will be useful in deploying TPM in project
DM Pillar Training Manual.ppt will be useful in deploying TPM in projectDM Pillar Training Manual.ppt will be useful in deploying TPM in project
DM Pillar Training Manual.ppt will be useful in deploying TPM in project
 
Crystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptxCrystal Structure analysis and detailed information pptx
Crystal Structure analysis and detailed information pptx
 
POWER SYSTEMS-1 Complete notes examples
POWER SYSTEMS-1 Complete notes  examplesPOWER SYSTEMS-1 Complete notes  examples
POWER SYSTEMS-1 Complete notes examples
 
Input Output Management in Operating System
Input Output Management in Operating SystemInput Output Management in Operating System
Input Output Management in Operating System
 
US Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of ActionUS Department of Education FAFSA Week of Action
US Department of Education FAFSA Week of Action
 
Main Memory Management in Operating System
Main Memory Management in Operating SystemMain Memory Management in Operating System
Main Memory Management in Operating System
 
young call girls in Green Park🔝 9953056974 🔝 escort Service
young call girls in Green Park🔝 9953056974 🔝 escort Serviceyoung call girls in Green Park🔝 9953056974 🔝 escort Service
young call girls in Green Park🔝 9953056974 🔝 escort Service
 
Configuration of IoT devices - Systems managament
Configuration of IoT devices - Systems managamentConfiguration of IoT devices - Systems managament
Configuration of IoT devices - Systems managament
 
Past, Present and Future of Generative AI
Past, Present and Future of Generative AIPast, Present and Future of Generative AI
Past, Present and Future of Generative AI
 
Designing pile caps according to ACI 318-19.pptx
Designing pile caps according to ACI 318-19.pptxDesigning pile caps according to ACI 318-19.pptx
Designing pile caps according to ACI 318-19.pptx
 
multiple access in wireless communication
multiple access in wireless communicationmultiple access in wireless communication
multiple access in wireless communication
 
Katarzyna Lipka-Sidor - BIM School Course
Katarzyna Lipka-Sidor - BIM School CourseKatarzyna Lipka-Sidor - BIM School Course
Katarzyna Lipka-Sidor - BIM School Course
 
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTION
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTIONTHE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTION
THE SENDAI FRAMEWORK FOR DISASTER RISK REDUCTION
 
National Level Hackathon Participation Certificate.pdf
National Level Hackathon Participation Certificate.pdfNational Level Hackathon Participation Certificate.pdf
National Level Hackathon Participation Certificate.pdf
 
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort serviceGurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
Gurgaon ✡️9711147426✨Call In girls Gurgaon Sector 51 escort service
 
Engineering Drawing section of solid
Engineering Drawing     section of solidEngineering Drawing     section of solid
Engineering Drawing section of solid
 
Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...Instrumentation, measurement and control of bio process parameters ( Temperat...
Instrumentation, measurement and control of bio process parameters ( Temperat...
 
Transport layer issues and challenges - Guide
Transport layer issues and challenges - GuideTransport layer issues and challenges - Guide
Transport layer issues and challenges - Guide
 
Crushers to screens in aggregate production
Crushers to screens in aggregate productionCrushers to screens in aggregate production
Crushers to screens in aggregate production
 
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...
Comparative study of High-rise Building Using ETABS,SAP200 and SAFE., SAFE an...
 

structural Lightweight Concrete.ppt

  • 2.  Introduction  Properties of LWC  Applications of LWC  Advantages and disadvantages  Case study  conclusion  References
  • 3.  Lightweight concrete can be defined as a type a type of concrete which includes an expanding agent in that it increases the volume of the mixture while giving additional qualities and lessened the dead weight.  It is lighter than the conventional concrete.  The use of lightweight concrete has been widely spread across countries such as USA, United Kingdom and Sweden. Structural lightweight concrete 3
  • 4.  It was first introduced by the Romans in the second century where ‘The Pantheon’ has been constructed using pumice, the most common type of aggregate used.  The building of ‘The Pantheon’ of lightweight concrete material is still standing eminently in Rome until now for about 18 centuries as shown in Figure . It shows that the lighter materials can be used in concrete . Structural lightweight concrete 4
  • 6.  Compressive strength is the primary physical property of concrete and is the one most used in design.  Fourteen trial mixes had been prepared during the research and from the results, the mixture with the highest compressive strength was used. Structural lightweight concrete 6
  • 7. Structural lightweight concrete 7 Compressive strength at different densities
  • 8. Structural lightweight concrete 8 Compressive strength at different percentage of foam
  • 9. Structural lightweight concrete 9 Compressive strength at different w/c ratio
  • 11. Structural lightweight concrete 11 Compressive strength for different % of foam
  • 12. Structural lightweight concrete 12 Compressive strength at different w/c ratio
  • 14.  Water absorption is an important factor due to the porous structure of the aerated lightweight concrete.  The water absorption test is done using the samples prepared at the age of 28 days.  The purpose of this test is to identify the capability of the concrete to absorb water. Structural lightweight concrete 14
  • 15. Structural lightweight concrete 15 Water absorption at different percentage of foam
  • 16. structural lightweight concrete 16 Water absorption at different foam agent and water ratio
  • 17. Structural lightweight concrete 17 Moisture content at different percentage of foam
  • 18. Structural lightweight concrete 18 Density of wet and hardened concrete
  • 19.  As with normal-weight concrete, entrained air in structural lightweight concrete ensures resistance to freezing and thawing and to deicer applications.  It also improves workability, reduces bleeding and segregation, and may compensate for minor grading deficiencies in the aggregate. Structural lightweight concrete 19
  • 20.  The amount of entrained air should be sufficient to provide good workability to the plastic concrete and adequate freeze-thaw resistance to the hardened concrete.  Air contents are generally between 5% and 8%, depending on the maximum size of coarse aggregate used and the exposure conditions. Structural lightweight concrete 20
  • 21.  Due to lower aggregate density, structural lightweight concrete does not slump as much as normal-weight concrete with the same workability.  It is seldom necessary to exceed slumps of 125 mm (5 in.) for normal placement of structural lightweight concrete. Structural lightweight concrete 21
  • 22.  As with normal-weight concrete, vibration can be used effectively to consolidate lightweight concrete; the same frequencies commonly used for normal-density concrete are recommended.  Excessive vibration causes segregation by forcing large aggregate particles to the surface. Structural lightweight concrete 22
  • 23. Structural lightweight concrete 23 Thermal resistance of concrete vs density
  • 24.  Lightweight concrete has been used since the eighteen centuries by the Romans.  The lightweight concrete was also used in construction during the First World War. The United States used mainly for shipbuilding.  It is widely used as loose-fill insulation in masonry construction where it enhances fire ratings, reduces noise transmission, does not rot and termite resistant. Structural lightweight concrete 24
  • 25.  It is also used for vessels, roof decks and other applications. Structural lightweight concrete 25
  • 26. Structural lightweight concrete 26  Rapid and relatively simple construction.  Economical in terms of transportation as well as reduction in manpower.  Significant reduction of overall weight results in saving structural frames, footing or piles.  Most of lightweight concrete have better nailing and sawing properties than heavier and stronger conventional concrete.
  • 27.  Very sensitive with water content in the mixtures.  Difficult to place and finish because of the porosity and angularity of the aggregate.  Mixing time is longer than conventional concrete to assure proper mixing. Structural lightweight concrete 27
  • 28.  Wellington stadium.  Location: New Zealand.  Capacity of the stadium : 40000  Architects : Hok-Lobb (brisbane),Warren & Mahoney.  Structure consultants :Holmes Consulting Group  Contractor : Fletcher Construction, Ltd.  LWA Supplier :TXI -PacificCustom Materials, Inc. (California). Structural lightweight concrete 28
  • 29.  The stadium is sited in a prominent location on the harbour edge, in close proximity to the main Wellington railway station, the Parliament buildings.  The site is exposed to wind blown sea spray and is located just a few hundred metres from one of the country's most active and violent seismic fault lines. Structural lightweight concrete 29
  • 30.  The structural layout consists of an oval bowl around the playing field (roofed only over the spectator seating) and is connected by a two level open walkway and parking building to the railway station.  At the southern end of the oval there is a four-storey administration building that also forms part of the main stand . Structural lightweight concrete 30
  • 32.  Poor foundation condition.  Severe earthquake forces.  Durability.  Rapid construction.  Space utilization.  Reduced site work.  Innovative spirit. Structural lightweight concrete 32
  • 33.  The use of lightweight concrete was initially proposed by Stresscrete, the precast concrete supplier.  But it was also readily accepted by the project structural consultants, Holmes Consulting Group, who were impressed by the potential of the product to reduce cost and responded enthusiastically to the challenge of a new material. Structural lightweight concrete 33
  • 34.  In the final analysis, the choice was between a structure of lightweight concrete, or one of steel. Normal weight concrete was ruled out early in the final design process. Structural lightweight concrete 34
  • 36.  Compressive strength : 44 MPa.  Density : 1845 kg/m^3.  Modulus Of Elasticity : 19 GPa.  Creep : 2.3. Failure On Expansive Soils 36
  • 37.  The initial findings have shown that the lightweight concrete has a desirable strength to be an alternative construction material for the industrialized building system.  The strength of aerated lightweight concrete are low for lower density mixture. This resulted in the increment of voids throughout the sample caused by the foam. Structural lightweight concrete 37
  • 38.  The foamed lightweight concrete is not suitable to be used as non-load bearing as the compressive strength is 27% less than recommended. The compressive strength is accepted to be produced as non-load bearing structure. Structural lightweight concrete 38
  • 39. Structural lightweight concrete 39  Report on research project on lightweight concrete.  Formed Lightweight Concrete. www.pearliteconcreteforrorepair.com  A.M Neville (1985) Properties of concrete  Cellular LightweightConcrete, Plan City/NCS LLC. www. Neoporsystem.com