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Friday, April 4, 2014

earthquakes

Ground-improvement methods might protect against earthquakes

Source: Purdue University
Summary:
Researchers are developing ground-improvement methods to help increase the resilience of homes and low-rise structures built on top of soils prone to liquefaction during strong earthquakes. Findings will help improve the safety of structures in Christchurch and the Canterbury region in New Zealand, which were devastated in 2010 and 2011 by a series of powerful earthquakes. Parts of Christchurch were severely affected by liquefaction, in which water-saturated soil temporarily becomes liquid-like and often flows to the surface creating sand boils.


     Researchers are using T-Rex, a 64,000-pound shaker truck, in research to increase the resilience of homes andlow-rise structures built on top of soils prone to liquefaction during strong earthquakes. T-Rex is based at a University of Texas at Austin facility that is part of the George E. Brown Jr. Network for Earthquake Engineering Simulation (NEES), a distributed laboratory with 14 sites around the United States

Researchers from the University of Texas at Austin's Cockrell School of Engineering are developing ground-improvement methods to help increase the resilience of homes and low-rise structures built on top of soils prone to liquefaction during strong earthquakes.

      Findings will help improve the safety of structures in Christchurch and the Canterbury region in New Zealand, which were devastated in 2010 and 2011 by a series of powerful earthquakes. Parts of Christchurch were severely affected by liquefaction, in which water-saturated soil temporarily becomes liquid-like and often flows to the surface creating sand boils.

     "The 2010-2011 Canterbury earthquakes in New Zealand have caused significant damage to many residential houses due to varying degrees of soil liquefaction over a wide extent of urban areas unseen in past destructive earthquakes," said Kenneth Stokoe, a professor in the Department of Civil, Architectural and Environmental Engineering. "One critical problem facing the rebuilding effort is that the land remains at risk of liquefaction in future earthquakes. Therefore, effective engineering solutions must be developed to increase the resilience of homes and low-rise structures."

Researchers have conducted a series of field trials to test shallow-ground-improvement methods.

     "The purpose of the field trials was to determine if and which improvement methods achieve the objectives of inhibiting liquefaction triggering in the improved ground and are cost-effective measures," said Stokoe, working with Brady Cox, an assistant professor of civil engineering. "This knowledge is needed to develop foundation design solutions."

      Findings were detailed in a research paper presented in December at the New Zealand -- Japan Workshop on Soil Liquefaction during Recent large-Scale Earthquakes. The paper was authored by Stokoe, graduate students Julia Roberts and Sungmoon Hwang; Cox and operations manager Farn-Yuh Menq from the University of Texas at Austin; and Sjoerd Van Ballegooy from Tonkin & Taylor Ltd, an international environmental and engineering consulting firm in Auckland, New Zealand.

    The researchers collected data from test sections of improved and unimproved soils that were subjected to earthquake stresses using a large mobile shaker, called T-Rex, and with explosive charges planted underground. The test sections were equipped with sensors to monitor key factors including ground motion and water pressure generated in soil pores during the induced shaking, providing preliminary data to determine the most effective ground-improvement method.

    Four ground-improvement methods were initially selected for the testing: rapid impact compaction (RIC); rammed aggregate piers (RAP), which consist of gravel columns; low-mobility grouting (LMG); and construction of a single row of horizontal beams (SRB) or a double row of horizontal beams (DRB) beneath existing residential structures via soil-cement mixing.
   "The results are being analyzed, but good and poor performance can already be differentiated," Stokoe said. "The ground-improvement methods that inhibited liquefaction triggering the most were RIC, RAP, and DRB. However, additional analyses are still underway."
The test site is located along the Avon River in the Christchurch suburb of Bexley. The work is part of a larger testing program that began in early 2013 with a preliminary evaluation by Brady Cox of seven potential test sites along the Avon River in the Christchurch area.

     Funding for the research has been provided, in part, by the National Science Foundation and is affiliated with the NSF's George E. Brown Jr. Network for Earthquake Engineering Simulation (NEES). The remainder of the funding has been provided by the Earthquake Commission of the New Zealand Government.

     The 64,000-pound T-Rex, operated by NEES@UTexas at UT Austin, is used to simulate a wide range of earthquake shaking levels.
NEES is a shared network of 14 experimental facilities, collaborative tools, centralized data repository and earthquake simulation software, all linked by high-speed Internet connections.

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Saturday, March 8, 2014

Top 10 Tallest Buildings In the World

List of tallest buildings in the world



1.Burj Khalifa


        Since its completion in 2010, the world's tallest skyscraper has been Burj Khalifa in Dubai, United Arab Emirates. The building, which was designed by the architects Skidmore, Owings & Merrill, is a mighty 828 meters tall and has 163 floors. Burj Khalifa is one of Dubai's most famous buildings. Its potential successor, Kingdom Tower in Jeddah, is however already in the starting blocks: At a kilometer in height, this ambitious construction project, which was started in 2013, is due to surpass the current record holder by some distance.

2.Shanghai Tower
         At a height of 632 meters, Shanghai Tower, located in the Chinese city of Shanghai, is almost 200 meters shorter than Burj Khalifa in Dubai. Although the skyscraper is due to be completed during the course of 2014, it has already topped out (reached its final height) and thus garnered second place in the list of the world's tallest buildings. In addition, Shanghai Tower will be home to the world's fastest elevators, which will climb the tower at the speed of 18 meters per second.


3.Makkah Clock Royal Tower

          The third-tallest building in the world is the Makkah Clock Royal Tower, whose most striking feature is its clock tower. The clock face is so large that the clock can be seen from 25 kilometers away. The 601-meter-tall building was completed in 2012 and is situated in Makkah, Saudi Arabia.


4.One World Trade Center

             60 meters behind in fourth place follows One World Trade Center in New York City, which topped out at 541 meters on May 10, 2013, since when it has not only been the world's fourth-tallest building but also the tallest skyscraper in New York City. The building is being constructed on the site of the former World Trade Center, which was destroyed in the terrorist attacks of September 11, 2001. Completion is due in spring 2014.

5.Taipei 101

 509 meters is the height of Taipei 101, which occupies fifth place in the list. The building was even the tallest in the world from 2004 to 2007 until it was surpassed by Burj Khalifa in Dubai, United Arab Emirates. Taipei 101 is named for its location in Taiwan's capital Taipei and for the number of stories in the building – 101 in total. Its striking design won it the 2004 Emporis Skyscraper Award.


6.Shanghai World Financial Center

    The Shanghai World Financial Center measures just 16 meters less than Taipei 101. The building, which due to its shape is also referred to as the "bottle-opener", is a direct neighbor of Shanghai Tower and was completed in 2008 from a design by Kohn Pedersen Fox.


7.International Commerce Centre

     With the International Commerce Centre in Hong Kong, a further Chinese skyscraper is to be found in seventh place in the ranking of the world's tallest buildings. The 484-meter-tall skyscraper houses the world's highest hotel on its top 13 floors and is also Hong Kong's tallest building.




8/9.Petronas Towers

        The eighth and ninth places are shared by the twin Petronas Towers in Kuala Lumpur. They count among the most famous buildings in the Malaysian capital, thanks in part to a skybridge connecting the two 452-meter-tall buildings on the 41st and 42nd floors. In addition, these were the world's tallest skyscrapers between 1996 and 2003.

10.Zifeng Tower

     The Petronas Towers are just two meters taller than the tenth-tallest skyscraper in the world, Zifeng Tower in Nanjing. This also means that no fewer than four of the world's ten tallest skyscrapers are located in China. Zifeng Tower, which was completed in 2010, has an observation platform at 272 meters up and includes a 500-room Intercontinental Hotel.







List of Top 20 Tallest Buildings According to Wikipedia
RankBuilding[A][6]CityCountryHeight (m)[1]Height (ft)FloorsBuilt
1Burj KhalifaDubai UAE828 m2,717 ft1632010
2Shanghai Tower[7]Shanghai China632 m2,073 ft1212014[B]
3Makkah Royal Clock Tower HotelMecca Saudi Arabia601 m[8]1,971 ft1202012
4One World Trade CenterNew York City USA541.3 m1,776 ft1042013
5Taipei 101Taipei Taiwan509 m[9]1,670 ft1012004
6Shanghai World Financial CenterShanghai China492 m1,614 ft1012008
7International Commerce CentreHong Kong Hong Kong484 m1,588 ft1182010
8Petronas Tower 1Kuala Lumpur Malaysia452 m1,483 ft881998
8Petronas Tower 2Kuala Lumpur Malaysia452 m1,483 ft881998
10Zifeng TowerNanjing China450 m1,476 ft892010
11Willis Tower (Formerly Sears Tower)Chicago USA442 m 1,450 ft 1081973
12Kingkey 100Shenzhen China442 m1,449 ft1002011
13Guangzhou International Finance CenterGuangzhou China440 m1,440 ft1032010
15Trump International Hotel and Tower[10]Chicago USA423 m1,389 ft982009
16Jin Mao TowerShanghai China421 m1,380 ft881999
17Princess TowerDubai UAE414 m1,358 ft[11]1012012
18Al Hamra Firdous TowerKuwait City Kuwait413 m1,354 ft772011
192 International Finance CentreHong Kong Hong Kong412 m1,352 ft882003
2023 MarinaDubai UAE395 m1,296 ft892012

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