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๏ฝ The burj khalifa project is located near 
down -town dubai, UAE. 
๏ฝ This is a multi-use tower that includes 
residential, hotel, commercial offices, 
entertainment, shopping, and parking 
facilities. 
๏ฝ It is the worldโ€™s tallest structure ever 
built.
๏ฝ Its construction began on 21 September 
2004, the exterior of the building was 
finished on 1 October 2009. 
๏ฝ It was under construction for six years. 
๏ฝ It was inaugurated on 4th January 2010. 
๏ฝ The total cost for the project was about 
US $1.5 billion.
๏ฝ Height =828m 
๏ฝ Numbers of floors=162 
๏ฝ Total area=465,000 square meters 
๏ฝ Concrete used=250,000 cubic meters 
๏ฝ Steel used=39,000 tonnes 
๏ฝ Glass used=83,600 square meters
๏ฝ Architect/Structural/Design: Skidmore, Owings 
and Merrill (SOM), Chicago. 
๏ฝ Chief Architect & Engineer: Adrian Smith & Bill 
Baker 
๏ฝ Field supervision: Hyder Consulting Ltd. 
๏ฝ General contractor: Samsung/BeSix/Arabtec 
๏ฝ Foundation contractor: NASA Multiplex 
๏ฝ Project Management: Turner Construction 
Company 
๏ฝ Developer: Emaar Properties, Dubai
๏ฝ The design of Burj Khalifa is derived from the 
geometries of desert flower Hymenocallis. 
๏ฝ The desert flower is indigenous to both the 
region and patterning system embodied in 
Islamic architecture.
๏ฝ The tower is organized around a central 
hexagonal core with three wings. 
๏ฝ Each wing consists of four bays where, at 
each 7th floor, one outer bay peels away as 
the structure spiral into the sky. 
๏ฝ The floor plan is characterized with a Y shape 
which maximizes the views of the Persian 
Gulf and provide tenants with plenty of 
natural lights.
๏ฝ The structure is designed using: 
1. Reinforced concrete (High performance 
concrete) from the foundation to level 156. 
2. Structural steel braced frame from level 156 
to the pinnacle.
๏ฝ Building a skyscraper poses challenges that 
test the mind of any engineer. Burj Khalifa 
stands a whopping 828m in the air making 
it the tallest building in the world. 
๏ฝ However, this was not accomplished without 
overcoming several major engineering design 
obstacles. 
๏ฝ Here are some of the challenges and 
innovations that the designers of Burj Khalifa 
overcame and engineered:
๏ฝ Select and optimize the tower structural 
system for strength, stiffness, cost 
effectiveness, redundancy, and speed of 
construction. 
๏ฝ Utilize the latest technologies and 
construction methods. 
๏ฝ Manage and locate the gravity load resisting 
system so as to maximize its use in resisting 
the lateral loads.
๏ฝ Incorporate the latest innovations in analysis, 
design, materials, and construction methods. 
๏ฝ Limit the building Movement (drift, 
acceleration, tensional velocity, etc.) to 
within the international accepted design 
criteria and standards. 
๏ฝ Control the dynamic response of the tower 
under wind loading.
๏ฝ The towerโ€™s lateral load resisting system 
consists of high performance reinforced 
concrete ductile core walls. 
๏ฝ Walls are linked to the exterior reinforced 
concrete columns through a series of 
reinforced concrete shear wall panels. 
๏ฝ The core walls vary in thickness from 
1300mm to 500mm.
๏ฝ The core walls are typically linked through a 
series of 800mm to 1100mm deep reinforced 
concrete or composite link beams at every 
level. 
๏ฝ The lateral load resisting system of the spire 
consists of a diagonal structural steel bracing 
system from level 156 to the top of the spire. 
๏ฝ The pinnacle consists of structural steel pipe 
section varying from 2100mm diameter x 
60mm thick at the base to 1200mm diameter 
x 30mm thick at the top (828m).
Structural steel 
Braced Frame System 
Reinforced Concrete 
Core wall/Frame System
๏ฝ Gravity load management is also critical as it 
has direct impact on the overall efficiency and 
performance of the tower. 
๏ฝ The gravity load flow line should be smooth. 
๏ฝ The total material needed to support the 
gravity load and that required to resist the 
combined effect of gravity and lateral loads is 
shown in figures.
๏ฝ The composite link beams were used as 
means of transferring the gravity loads into 
the center corridor Spine web walls 
(650mm),to the hammer head walls and nose 
columns for maximum resistance to lateral 
loads. 
๏ฝ Along these load flow lines the strain gages 
are installed to track the gravity load flow. 
๏ฝ The reinforced concrete center core wall at 
level 156 provides the base support for the 
spire and pinnacle structure.
๏ฝ As with any tall building, wind plays a major factor in 
the construction and design process. 
๏ฝ In order to begin building, the design team of Burj 
Khalifa conducted over 40 wind tunnel tests at Guelph, 
Ontario, Canada. 
๏ฝ The 3D analysis and dynamic analysis indicated that the 
tower sways 1.5m at its highest point. 
๏ฝ Engineers spent months in wind tunnels with scale 
models perfecting this โ€œYโ€ shaped design. Wind could 
strike the tower from any one direction and the 
opposing leg of the โ€œYโ€ would remain unstressed.
The wind engineering management of the tower 
was achieved by: 
๏ฝ Varying the building shape along the height while 
continuing, without interruption, the building 
gravity and lateral load resisting system. 
๏ฝ Reducing the floor plan along the height, thus 
effectively tapering the building profile. 
๏ฝ As the wind encounters a different shape at each 
new tier the wind vortices never gets organized, 
thus reduced the wind forces.
๏ฝ The foundations for the structure was one of 
many challenges faced during the design 
process. 
๏ฝ The site was already mostly flat, but the 
ground around the surface was not near 
strong enough mostly comprised of loose to 
medium sands on the surface level and even 
week sandstone and siltstone underneath 
that. 
๏ฝ It was apparent from the beginning that 
there was going to be some deeply set pillars 
supporting the foundation.
๏ฝ The pillars that were to be used were tested 
in the laboratory and found to have a 
maximum axial load capacity of 64MN. 
๏ฝ Based on this number and the layout of the 
projected building, a layout of 192 bores 
piles were laid out running about 50m deep 
into firmer grounds underneath. 
๏ฝ The piles were 1.5m in diameter and 
staggered about 4m from one another spread 
through the foundation.
๏ฝ An assessment of the foundations for the structure was 
carried out and it was clear that piled raft foundations 
would be appropriate for both the Tower and Podium 
construction. 
๏ฝ Tower piles were 1.5m diameter and 47.45m long. 
๏ฝ The podium piles were 0.9m diameter and 30m long. 
๏ฝ The thickness of the raft was 3.7m.
๏ฝ The task of laying concrete from ground 
level to heights soaring above 1600 feet had 
simply never been done before. 
๏ฝ To do this, engineers simulated the effects of 
pumping concrete to grand heights by testing 
concrete through horizontal pipes on the 
construction site. 
๏ฝ Engineers successfully used 80 MPa of 
pressure to pump concrete to a height of 
1972 feet.
๏ฝ During the construction of the Burj Khalifa 
people from all over the world came to work 
on different aspects of the building. 
๏ฝ During the height of construction over 
12,000 workers were on site every day, and 
after all was said and done over 60 contractor 
companies had made their mark on this 
extraordinary project. 
๏ฝ Managing all these people and all these 
operations was no small task that was only 
complicated by the extreme conditions of the 
building site.
๏ฝ Impressive safety measures were implemented 
throughout the building of the Burj Khalifa. 
๏ฝ Workers initially were put through an extensive 
training course. 
๏ฝ The higher you climbed the more thorough was 
the safety, which also depended on the type of 
work that was to be done. 
๏ฝ Strict, โ€œalmost military likeโ€ rules (Mohammad 
Moiz Al Deen, health and safety manager at Burj 
Khalifa) including a strict no smoking policy were 
enforced throughout the project, with over 100 
people being fired for various incidents.
๏ฝ The stack effect is a common problem in 
most high rise buildings and is also prevalent 
but less pronounced and dangerous in 
everyday buildings and houses. 
๏ฝ The stack effect is the movement of air into 
and out of buildings. Commonly, the warmer 
air is lighter and less dense than cold air. 
Therefore the warm air will rise to the top of 
the building while the cold air will try to fill 
the cracks in the bottom of the building.
๏ฝ This could be disastrous to a building as tall as 
Burj Khalifa. Cracks in the foundation could 
cause complete structural failure. 
๏ฝ To mitigate this effect, the designers of the 
building used several air duct systems to move 
the warm air out of the building. 
๏ฝ The stack effect cannot be completely 
eliminated however it can be mitigated and 
used as a ventilation system for the upper part 
of the building.
The development of the Survey and SHM 
programs at Burj Khalifa included; 
๏ฝ Testing all concrete grades to confirm the 
concrete mechanical properties and 
characteristic (strength, modulus of elasticity, 
shrinkage and creep characteristics, 
durability, heat of hydration, etc.) 
๏ฝ Survey monitoring programs to measure the 
foundation settlement, column shortening, 
and tower lateral movement from the early 
construction stage until the completion of the 
structure.
๏ฝ Strain monitoring program to measure the actual 
strains in the columns, walls, and near the 
outrigger levels to confirm the load transfer into 
the exterior mega columns. 
๏ฝ Installation of the temporary real-time health 
monitoring program to measure the building 
lateral displacement and acceleration during 
construction, and to identify the building 
dynamic characteristics (frequencies, damping, 
etc) during construction. 
๏ฝ This system included bi-directional 
accelerometers, GPS system, and weather station 
(wind speed, wind direction, humidity, and 
temperature).
Typical Strain Gage Monitoring System Concept and Layout for the tower superstructure 
and foundation systems.
Detailed summary of the temporary real time monitoring program configuration and 
building movement during construction (due to Sept. 10 2008 earthquake in Iran)
๏ฝ Installation of a permanent real-time structural 
health monitoring (SHM) program to measure 
the building acceleration, movement, dynamic 
characteristics (frequencies, mode shapes), 
acceleration time history record and tilt of the 
foundation at the base of the tower, wind 
velocity profile along the entire height, weather 
station, and fatigue behaviour of the 
spire/pinnacle.
Detailed summary of the permanent real-time Structural Health Monitoring (SHM) 
program concept developed by the author for Burj Khalifa.
๏ฝ Concrete construction showed to be at its 
infancy where nobody has dreamt of creating 
such a tall building using concrete. 
๏ฝ Burj khalifa project has demonstrated that as 
the technologies advance, the super tall 
building wonโ€™t be a dream anymore. 
๏ฝ Burj khalifa is a step forward in meeting the 
technological challenges of future 
construction. 
๏ฝ Burj khalifa simply proved that โ€˜Nothing is 
Impossible โ€™
Thank You

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Burj khalifa

  • 1.
  • 2.
  • 3. ๏ฝ The burj khalifa project is located near down -town dubai, UAE. ๏ฝ This is a multi-use tower that includes residential, hotel, commercial offices, entertainment, shopping, and parking facilities. ๏ฝ It is the worldโ€™s tallest structure ever built.
  • 4. ๏ฝ Its construction began on 21 September 2004, the exterior of the building was finished on 1 October 2009. ๏ฝ It was under construction for six years. ๏ฝ It was inaugurated on 4th January 2010. ๏ฝ The total cost for the project was about US $1.5 billion.
  • 5. ๏ฝ Height =828m ๏ฝ Numbers of floors=162 ๏ฝ Total area=465,000 square meters ๏ฝ Concrete used=250,000 cubic meters ๏ฝ Steel used=39,000 tonnes ๏ฝ Glass used=83,600 square meters
  • 6. ๏ฝ Architect/Structural/Design: Skidmore, Owings and Merrill (SOM), Chicago. ๏ฝ Chief Architect & Engineer: Adrian Smith & Bill Baker ๏ฝ Field supervision: Hyder Consulting Ltd. ๏ฝ General contractor: Samsung/BeSix/Arabtec ๏ฝ Foundation contractor: NASA Multiplex ๏ฝ Project Management: Turner Construction Company ๏ฝ Developer: Emaar Properties, Dubai
  • 7. ๏ฝ The design of Burj Khalifa is derived from the geometries of desert flower Hymenocallis. ๏ฝ The desert flower is indigenous to both the region and patterning system embodied in Islamic architecture.
  • 8.
  • 9. ๏ฝ The tower is organized around a central hexagonal core with three wings. ๏ฝ Each wing consists of four bays where, at each 7th floor, one outer bay peels away as the structure spiral into the sky. ๏ฝ The floor plan is characterized with a Y shape which maximizes the views of the Persian Gulf and provide tenants with plenty of natural lights.
  • 10. ๏ฝ The structure is designed using: 1. Reinforced concrete (High performance concrete) from the foundation to level 156. 2. Structural steel braced frame from level 156 to the pinnacle.
  • 11.
  • 12. ๏ฝ Building a skyscraper poses challenges that test the mind of any engineer. Burj Khalifa stands a whopping 828m in the air making it the tallest building in the world. ๏ฝ However, this was not accomplished without overcoming several major engineering design obstacles. ๏ฝ Here are some of the challenges and innovations that the designers of Burj Khalifa overcame and engineered:
  • 13.
  • 14. ๏ฝ Select and optimize the tower structural system for strength, stiffness, cost effectiveness, redundancy, and speed of construction. ๏ฝ Utilize the latest technologies and construction methods. ๏ฝ Manage and locate the gravity load resisting system so as to maximize its use in resisting the lateral loads.
  • 15. ๏ฝ Incorporate the latest innovations in analysis, design, materials, and construction methods. ๏ฝ Limit the building Movement (drift, acceleration, tensional velocity, etc.) to within the international accepted design criteria and standards. ๏ฝ Control the dynamic response of the tower under wind loading.
  • 16. ๏ฝ The towerโ€™s lateral load resisting system consists of high performance reinforced concrete ductile core walls. ๏ฝ Walls are linked to the exterior reinforced concrete columns through a series of reinforced concrete shear wall panels. ๏ฝ The core walls vary in thickness from 1300mm to 500mm.
  • 17. ๏ฝ The core walls are typically linked through a series of 800mm to 1100mm deep reinforced concrete or composite link beams at every level. ๏ฝ The lateral load resisting system of the spire consists of a diagonal structural steel bracing system from level 156 to the top of the spire. ๏ฝ The pinnacle consists of structural steel pipe section varying from 2100mm diameter x 60mm thick at the base to 1200mm diameter x 30mm thick at the top (828m).
  • 18. Structural steel Braced Frame System Reinforced Concrete Core wall/Frame System
  • 19. ๏ฝ Gravity load management is also critical as it has direct impact on the overall efficiency and performance of the tower. ๏ฝ The gravity load flow line should be smooth. ๏ฝ The total material needed to support the gravity load and that required to resist the combined effect of gravity and lateral loads is shown in figures.
  • 20.
  • 21. ๏ฝ The composite link beams were used as means of transferring the gravity loads into the center corridor Spine web walls (650mm),to the hammer head walls and nose columns for maximum resistance to lateral loads. ๏ฝ Along these load flow lines the strain gages are installed to track the gravity load flow. ๏ฝ The reinforced concrete center core wall at level 156 provides the base support for the spire and pinnacle structure.
  • 22.
  • 23.
  • 24. ๏ฝ As with any tall building, wind plays a major factor in the construction and design process. ๏ฝ In order to begin building, the design team of Burj Khalifa conducted over 40 wind tunnel tests at Guelph, Ontario, Canada. ๏ฝ The 3D analysis and dynamic analysis indicated that the tower sways 1.5m at its highest point. ๏ฝ Engineers spent months in wind tunnels with scale models perfecting this โ€œYโ€ shaped design. Wind could strike the tower from any one direction and the opposing leg of the โ€œYโ€ would remain unstressed.
  • 25.
  • 26.
  • 27. The wind engineering management of the tower was achieved by: ๏ฝ Varying the building shape along the height while continuing, without interruption, the building gravity and lateral load resisting system. ๏ฝ Reducing the floor plan along the height, thus effectively tapering the building profile. ๏ฝ As the wind encounters a different shape at each new tier the wind vortices never gets organized, thus reduced the wind forces.
  • 28.
  • 29. ๏ฝ The foundations for the structure was one of many challenges faced during the design process. ๏ฝ The site was already mostly flat, but the ground around the surface was not near strong enough mostly comprised of loose to medium sands on the surface level and even week sandstone and siltstone underneath that. ๏ฝ It was apparent from the beginning that there was going to be some deeply set pillars supporting the foundation.
  • 30.
  • 31. ๏ฝ The pillars that were to be used were tested in the laboratory and found to have a maximum axial load capacity of 64MN. ๏ฝ Based on this number and the layout of the projected building, a layout of 192 bores piles were laid out running about 50m deep into firmer grounds underneath. ๏ฝ The piles were 1.5m in diameter and staggered about 4m from one another spread through the foundation.
  • 32.
  • 33. ๏ฝ An assessment of the foundations for the structure was carried out and it was clear that piled raft foundations would be appropriate for both the Tower and Podium construction. ๏ฝ Tower piles were 1.5m diameter and 47.45m long. ๏ฝ The podium piles were 0.9m diameter and 30m long. ๏ฝ The thickness of the raft was 3.7m.
  • 34.
  • 35.
  • 36. ๏ฝ The task of laying concrete from ground level to heights soaring above 1600 feet had simply never been done before. ๏ฝ To do this, engineers simulated the effects of pumping concrete to grand heights by testing concrete through horizontal pipes on the construction site. ๏ฝ Engineers successfully used 80 MPa of pressure to pump concrete to a height of 1972 feet.
  • 37.
  • 38.
  • 39. ๏ฝ During the construction of the Burj Khalifa people from all over the world came to work on different aspects of the building. ๏ฝ During the height of construction over 12,000 workers were on site every day, and after all was said and done over 60 contractor companies had made their mark on this extraordinary project. ๏ฝ Managing all these people and all these operations was no small task that was only complicated by the extreme conditions of the building site.
  • 40.
  • 41. ๏ฝ Impressive safety measures were implemented throughout the building of the Burj Khalifa. ๏ฝ Workers initially were put through an extensive training course. ๏ฝ The higher you climbed the more thorough was the safety, which also depended on the type of work that was to be done. ๏ฝ Strict, โ€œalmost military likeโ€ rules (Mohammad Moiz Al Deen, health and safety manager at Burj Khalifa) including a strict no smoking policy were enforced throughout the project, with over 100 people being fired for various incidents.
  • 42.
  • 43. ๏ฝ The stack effect is a common problem in most high rise buildings and is also prevalent but less pronounced and dangerous in everyday buildings and houses. ๏ฝ The stack effect is the movement of air into and out of buildings. Commonly, the warmer air is lighter and less dense than cold air. Therefore the warm air will rise to the top of the building while the cold air will try to fill the cracks in the bottom of the building.
  • 44. ๏ฝ This could be disastrous to a building as tall as Burj Khalifa. Cracks in the foundation could cause complete structural failure. ๏ฝ To mitigate this effect, the designers of the building used several air duct systems to move the warm air out of the building. ๏ฝ The stack effect cannot be completely eliminated however it can be mitigated and used as a ventilation system for the upper part of the building.
  • 45.
  • 46. The development of the Survey and SHM programs at Burj Khalifa included; ๏ฝ Testing all concrete grades to confirm the concrete mechanical properties and characteristic (strength, modulus of elasticity, shrinkage and creep characteristics, durability, heat of hydration, etc.) ๏ฝ Survey monitoring programs to measure the foundation settlement, column shortening, and tower lateral movement from the early construction stage until the completion of the structure.
  • 47. ๏ฝ Strain monitoring program to measure the actual strains in the columns, walls, and near the outrigger levels to confirm the load transfer into the exterior mega columns. ๏ฝ Installation of the temporary real-time health monitoring program to measure the building lateral displacement and acceleration during construction, and to identify the building dynamic characteristics (frequencies, damping, etc) during construction. ๏ฝ This system included bi-directional accelerometers, GPS system, and weather station (wind speed, wind direction, humidity, and temperature).
  • 48. Typical Strain Gage Monitoring System Concept and Layout for the tower superstructure and foundation systems.
  • 49. Detailed summary of the temporary real time monitoring program configuration and building movement during construction (due to Sept. 10 2008 earthquake in Iran)
  • 50. ๏ฝ Installation of a permanent real-time structural health monitoring (SHM) program to measure the building acceleration, movement, dynamic characteristics (frequencies, mode shapes), acceleration time history record and tilt of the foundation at the base of the tower, wind velocity profile along the entire height, weather station, and fatigue behaviour of the spire/pinnacle.
  • 51. Detailed summary of the permanent real-time Structural Health Monitoring (SHM) program concept developed by the author for Burj Khalifa.
  • 52. ๏ฝ Concrete construction showed to be at its infancy where nobody has dreamt of creating such a tall building using concrete. ๏ฝ Burj khalifa project has demonstrated that as the technologies advance, the super tall building wonโ€™t be a dream anymore. ๏ฝ Burj khalifa is a step forward in meeting the technological challenges of future construction. ๏ฝ Burj khalifa simply proved that โ€˜Nothing is Impossible โ€™