Showing posts with label Tensile strength. Show all posts
Showing posts with label Tensile strength. Show all posts

Monday, December 21, 2020

BAMBOO FIBER COMPOSITE - Could a bamboo fiber composite replace steel reinforcements in concrete? Bamboo has been used in a variety of construction applications to varying degrees of success, but a new bamboo fiber composite may be the perfect sustainable replacement for steel reinforcements in concrete. Steel has long played an important role in growing and vibrant world economies. Bamboo is Mother Nature’s magic material — sustainable, resilient, and oh-so-abundant in many developing countries. More than a snack for our furry friends, it has been used in a variety of applications in construction — everything from suspension bridges and scaffolding to small (and not-so-small) homes. Bamboo is strong, almost as strong as steel. It’s also pretty effective at curbing carbon emissions, which makes it an even better and sustainable building material. What makes it not so ideal is that bamboo, if left untreated, can swell with water and rot. As a result, it hasn’t been used to reinforce concrete with much success — at least, not until now. Led by Dirk Hebel, the research team at Future Cities has developed a bamboo fiber composite that has, thus far, showed great promise as a replacement for steel reinforcements. According to a Civil Engineering Magazine article, the composite — 80 percent bamboo, 20 percent adhesive, and 300 percent more dense than raw bamboo — is “water resistant, does not swell, and is durable.”

Bamboo has been used in a variety of construction applications to varying degrees of success, but a new bamboo fiber composite may be the perfect sustainable replacement for steel reinforcements in concrete.
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Bamboo reinforced concrete

Bamboo Fiber Composite

Could a bamboo fiber composite replace steel reinforcements in concrete?

JESSICA MCMATHIS

The American Ceramic Society

 

Steel has long played an important role in growing and vibrant world economies.

I know this not because global economic statistics tell me so, but because I hail from Pennsylvania, just a few hours north of Pittsburgh, where steel was once more than just an industry—it was a way of life.

Steel City in the 1940s

At the turn of the 20th century, 37 percent of the world’s steel was produced in the U.S. — with Pittsburgh’s steel mills accounting for 60 percent of what was produced nationally by 1910.

But by the end of the century, steel production in the States, particularly in Pittsburgh, had slowed.

Three-quarters of the city’s steel operations had closed up shop in the late 1980s, forcing the Steel City to reinvent itself, which it has, to great success. (Need proof? See it for yourself at MS&T14, October 12–16.)

In 2013, America ranked fifth in overall steel production, generating some 87 million metric tons  — far below the 779 million metric tons produced by world leader China.

The production and consumption of steel has been critical in shoring up the economies of China and other developing countries — Brazil, India, and South Korea among them — but these countries are not always capable of producing a supply that can meet an increasingly growing demand.

Enter scientists at Singapore’s Future Cities Laboratory (ETH Zürich’s research lab), who offer bamboo, a natural — and unnaturally strong — wood, as a replacement in places where steel isn’t so plentiful.

Bamboo scaffolding on a Hong Kong building

Bamboo is Mother Nature’s magic material — sustainable, resilient, and oh-so-abundant in many developing countries.

More than a snack for our furry friends, it has been used in a variety of applications in construction — everything from suspension bridges and scaffolding to small (and not-so-small) homes.

Bamboo is strong, almost as strong as steel. It’s also pretty effective at curbing carbon emissions, which makes it an even better and sustainable building material.

What makes it not so ideal is that bamboo, if left untreated, can swell with water and rot. As a result, it hasn’t been used to reinforce concrete with much success — at least, not until now.

Led by Dirk Hebel, the research team at Future Cities has developed a bamboo fiber composite that has, thus far, showed great promise as a replacement for steel reinforcements.

Bamboo reinforced concrete

According to a Civil Engineering Magazine (CE) article, the composite — 80 percent bamboo, 20 percent adhesive, and 300 percent more dense than raw bamboo — is “water resistant, does not swell, and is durable.”

Further, researchers say that testing of its pliancy and tensile strength show that the composite would be a viable replacement for a steel reinforcement.

“To reintroduce production into cities as part of a complex social and cultural lifestyle, it requires that this production — and the products themselves — do not harm our health or environment,” Hebel says in the CE article.

“Renewable and ‘green’ materials like the one we are researching, which do not require a ‘smoke industry,’ but rather a low-tech approach, could be the game-changers whereby small and middle-sized companies can operate as part of an urban system. Wherever bamboo is growing, this process could work out.”

The team will continue to test the bamboo fiber and how it interacts with other materials. They hope to begin pilot testing within the next two years.

The American Ceramic Society

Since 1898, ACerS has been the hub of the global ceramics community and one of the most trusted sources of ceramic materials & applications knowledge. If ceramics and glass technologies are a significant part of your work, then ACerS is the professional society for you.

Who We Are

The mission of ACerS is to advance the study, understanding, and use of ceramics and related materials, for the benefit of our members and society. More than 11,000 scientists, engineers, researchers, manufacturers, plant personnel, educators, students, marketing and sales professionals from more than 70 countries make up the members of The American Ceramic Society.

https://ceramics.org/ceramic-tech-today/biomaterials/could-a-bamboo-fiber-composite-replace-steel-reinforcements-in-concrete


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Monday, December 7, 2020

BAMBOO FOR REINFORCED CONCRETE CONSTRUCTION - The steel as a reinforcing material is a demand that is increasing day by day in most of the developing countries. There are situations when the production is not found enough to face the demand for steel. Hence it is essential to have an alternative that is worth compared to steel. Bamboo is found in abundance. They are resilient and hence these can face the demand as a reinforcing material and become an ideal replacement for steel. The tensile strength property which is the main requirement of a reinforcing material is seen appreciable for bamboo, compared with other materials including steel. The structure of bamboo from its origin gives this property. The hollow tubular structure has high resistance against wind forces when it is in natural habitat. Working on the weak points of bamboo and bringing up an innovation of bamboo as a structural steel replacement, would be a great alternative. Advantages of Bamboo in Reinforcement: Bamboo is extremely strong natural fiber. It has high tensile strength. Due to its hollow structure, it is highly flexible. Lightweight compared to steel. Low cost and environment-friendly. It has great shock absorbing capacity. Employ bamboo having an evident brown color. This shows the age of bamboo to be at least 3 years. Diameter – Use the one with long large culms. Among 1500 species of bamboo, the best one must be checked, tested to satisfy the requirement as a reinforcing material.

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Bamboo for Reinforced Concrete Construction

by Kathir 

Civil Snapshot 

 

The steel as a reinforcing material is a demand that is increasing day by day in most of the developing countries.

There are situations when the production is not found enough to face the demand for steel.

Hence it is essential to have an alternative that is worth compared to steel.

Bamboo is found in abundance.

They are resilient and hence these can face the demand as a reinforcing material and become an ideal replacement for steel.

The tensile strength property which is the main requirement of a reinforcing material is seen appreciable for bamboo, compared with other materials including steel.

The structure of bamboo from its origin gives this property.

The hollow tubular structure has high resistance against wind forces when it is in natural habitat. Working on the weak points of bamboo and bringing up an innovation of bamboo as a structural steel replacement, would be a great alternative.

Advantages of Bamboo in Reinforcement:

1.    Bamboo is extremely strong natural fiber.

2.    It has high tensile strength.

3.    Due to its hollow structure, it is highly flexible.

4.    Lightweight compared to steel.

5.    Low cost and environment-friendly.

6.    It has great shock absorbing capacity.

Disadvantages of Bamboo in Reinforcement:

The biggest part which discourages the use of bamboo as reinforcement is its disadvantages.

1.    Less durable than steel, cannot be used in permanent structure.

2.    Shrinking problems.

3.    More prone to environmental degradation and insect attack.

4.    Cannot be used in cold climate.

5.    It does not have longer life compared to steel.

6.    Low modulus of elasticity, poor adherence to concrete mix.

7.    Due to lower modulus of elasticity, it can crack and deflect more than steel reinforcement.

Selection of Bamboo for Reinforced Concrete Construction

Selection of bamboo for reinforcement can be done based on these factors

Color and Age – Employ bamboo having an evident brown color. This shows the age of bamboo to be at least 3 years.

Diameter – Use the one with long large culms.

Harvesting – Try to avoid those bamboos that are cut either during spring or summer seasons.

Species – Among 1500 species of bamboo, the best one must be checked, tested to satisfy the requirement as a reinforcing material.

Civil Snapshot is a learning site for all the Civil Engineers and Students around the world. Our mission is educate with trusted source of knowledge everything related to Civil Engineering.

If you want more details about civil engineering follow us:

Youtube Channel: https://www.youtube.com/channel/UCrq9YEOQmmLP4b5o_PbQeqg

Facebook Page: https://www.facebook.com/civilengineerhome

https://civilsnapshot.com/bamboo-for-reinforced-concrete-construction/


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Tuesday, November 10, 2020

WORLD'S FIRST CARBON-FIBER REINFORCED CONCRETE BUILDING – Carbon-fiber reinforced concrete is a composite product that consists of carbon fiber — which provides strength and stiffness and polymers — which hold the fibers together in a kind of matrix. The micro or macrofibers can be either synthetic or natural. The consensus within the industry is that this kind of reinforcement can significantly increase the life of the structure in which the composite is used. The carbon fiber being deployed for CUBE is produced from petroleum-based polyacrylonitrile, or PAN. It can also be made from lignin, an organic polymer derived from waste material in paper production. TU Munich has been exploring the production of carbon fiber from algae oil. A two-story building locally named Carbonhaus on the campus of Technical University in Dresden, Germany is under construction which will be the first building in the world built entirely on Carbon Reinforced Concrete. The building has a covered area of 2200 Square feet and will be completed with a budget of 5 Million Euros (US$5.63 million). The building consists of two major portions: a precast “box”; and the “twist,” a double-curved roof that is made up of the lighter-weight and bendable reinforced concrete. This building will house a classroom, lab, presentation spaces, and a small kitchen. The biggest attraction as well as the engineering marvel of this will be its curved roof as well as 24-meter length of seamless concrete.

A curved roof and one wall that is 24 meters of seamless concrete are two characteristics of Carbonhaus

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World's First Carbon-Fiber Reinforced Concrete

By: Haseeb Jamal

 

A two-story building locally named Carbonhaus on the campus of Technical University in Dresden, Germany is under construction which will be the first building in the world built entirely on Carbon Reinforced Concrete.

The building has a covered area of 2200 Square feet and will be completed with a budget of 5 Million Euros (US$5.63 million).

The building consists of two major portions: a precast “box”; and the “twist,” a double-curved roof that is made up of the lighter-weight and bendable reinforced concrete.

This university building will house a classroom, lab, presentation spaces, and a small kitchen.

The biggest attraction as well as the engineering marvel of this will be its curved roof as well as 24-meter length of seamless concrete.

The design architect of Carbonhaus is Gunter Henn, chairman of Munich-based architecture firm HENN.

The project is engineered by Architeckten Ingenieure Batzen (AIB), whereas Assmann Advice + Plan is providing structural planning services.

Manfred Curbach, director of the Institute of Concrete Construction at TU Dresden, where he is a professor, said "When we started publishing the first results on carbon reinforced concrete at that time, we were smiled at. It is nonsense. The topic will be off the table in three years".

That was in 1998. Now 22 years later, despite the difficult current situation, the world's first building made entirely of carbon reinforced concrete is being built on the campus of the TU Dresden.

"It is a quantum leap in the history of civil engineering" he added.

The reinforced concrete is named as Carbon Concrete Composite and named as C3 or Cube..

What is Carbon-Fiber Reinforced Concrete?

Carbon-fiber reinforced concrete is a composite product that consists of carbon fiber — which provides strength and stiffness and polymers — which hold the fibers together in a kind of matrix. The micro or macrofibers can be either synthetic or natural.

The consensus within the industry is that this kind of reinforcement can significantly increase the life of the structure in which the composite is used.

The carbon fiber being deployed for CUBE is produced from petroleum-based polyacrylonitrile, or PAN.

It can also be made from lignin, an organic polymer derived from waste material in paper production.

TU Munich has been exploring the production of carbon fiber from algae oil.

Importance & Applications of Carbon-Fiber Reinforced Concrete

It offers more durability and is better for the environment than the standard mix of building materials.

The carbon-reinforced material provides more resistance to cracking and erosion than conventional steel and concrete building components.

The use of the new alternative, however, still faces some regulatory and economic hurdles.

As at least half of the concrete in a typical building component is used to protect the steel reinforcement from corrosion.

Hence, as much as 60% of a concrete structure is dead weight of the structure which the concrete and reinforcement has to support, increasing the cost of the structure.

Experts say that because steel and concrete “work in tandem, but not together,” the resulting component continues to be prone to cracking and erosion, to the point where buildings and infrastructure don’t last anywhere near as long as they should.

“They are designed for strength, but not durability, and no one is accountable after 10 years of service.”

On the other hand, the weight of carbon reinforcement materials is about one-quarter that of steel, with the same tensile strength.

The composite component is more durable and saves up to 70% in greenhouse gas emissions.

Though it could take 20 years to get mainstream and would require regulations but once in effect it would help accelerate the decline of CO2.

Carbon concrete can, however, not only be used in the strengthening or refurbishment of bridges or structures.

It paves the way for the construction industry to develop an entirely new way of building and living.

Carbon concrete enables the interior walls of buildings to consist of panels only a few centimeters thick, thus providing new design possibilities that are characterized by slenderness, lightness and esthetic principles.

Potential applications thus extend across the entire spectrum of construction engineering – whether refurbishment or new construction.

https://youtu.be/nB9ViglDMmg

Haseeb Jamal. I am a Civil Engineer, graduated from University of Engineering and Technology, PeshawarPakistan in 2010. I also have a PG-Diploma in Disaster Management and MS in Urban Infrastructure Engineering (In Progress). My expertise include civil related softwares like AutoCAD, SAP2000, MS Project, Primavera, MS Office and GIS. My technical skills include project management, monitoring and evaluation, structural assessment, disaster risk management, Quantity survey, land survey, material testing, site management and technical writing. I am trained in writing project progress reports as well as proposals and concept papers. I have also received advanced training on surveying, proposal writing, Monitoring and Evaluation of projects as well as organizations.

I have worked as Project Engineer at National Research and Development Foundation, Peshawar and CENCON Associates. I also worked with Spectra Engineering Solutions as Senior Civil Engineer in monitoring of World Bank and UNDP funded projects all over Khyber Pakhtunkhwa and FATA. Currently, I am working as Deputy Manager Development at NayaTel, Peshawar.

https://www.aboutcivil.org/carbon-reinforced-concrete-building-cube


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