Showing posts with label composites. Show all posts
Showing posts with label composites. Show all posts

Sunday, October 9, 2011

A model could guide the design of artificial composites

Many biomaterials such as bone, shell and mineralized tendon have a hierarchical structure that provides the material with exceptional mechanical and load-bearing properties, even though the building blocks of such structures may themselves have very poor mechanical properties. One type of structural hierarchy known as ‘self-similarity’ is ubiquitous in nature and is based on the repetition of units that are composed of biominerals and proteins, creating multi-level structures that provide enhanced strength and durability.


The number of hierarchical levels in such structures is dependent on the mineral content. Bone, for example, combines soft organic collagen material and hard crystal phases in an organized seven-level structure (see image), whereas shell is typically organized into two- or three-level structures. Little has been known, however, about what determines the number of levels in natural systems. Zuoqi Zhang at the A*STAR Institute of High Performance Computing and co-workers have now developed a theoretical, quasi-self-similar model to demonstrate why these natural biomaterials typically exhibit two to seven levels of structural hierarchy.


Previous experiments at different size scales have shown that the cooperative deformation of load-bearing biomaterials depends on their underlying hierarchical structures. The model developed by Zhang’s team, however, is the first to match these measurements of mineral and collagen deformation in bone and mineralized tendon. In the new model, each hierarchical level consists of hard, slender inclusions that form a staggered pattern within a soft matrix. These staggered microstructures then serve as inclusions in the next level. “The aspect ratio of the inclusions varies from level to level,” says Zhang.


The model showed that depending on mineral concentration, maximum toughness is obtained at a certain number of hierarchical levels and a certain . Zhang notes that within the optimal structure, characteristic sizes range from tens of nanometers to hundreds of micrometers. The model also confirmed the predicted trend that the number of hierarchical levels would be highest for bone, lower for mineralized tendon, and lowest for shell. “These predictions are in agreement with experimental observations,” says Zhang.


The researchers are currently planning to use their to guide the design and fabrication of artificial hierarchical composites in the laboratory. In addition, they are investigating the ability of hierarchical biomaterials to resist impact load. “We are trying to reveal the underlying mechanisms that may lead to acoustic cloaking composites—materials with the ability to make an object ‘invisible’ to sound,” says Zhang.


More information: Zhang, Z., et al. On optimal hierarchy of load-bearing biological materials. Proceedings of the Royal Society B 278, 519–525 (2011). http://rspb.royals … 278/1705/519


Provided by Agency for Science, Technology and Research (A*STAR)

Saturday, September 24, 2011

Carbon nanotube composites for enzymes and cosmetics

 Toyohashi Tech researchers develop a low cost and efficient method for producing electrically conducting composites based on electrostatic adsorption of CNTs onto resin and ceramic particles for applications including the production of enzymes and cosmetics.


Hiroyuki Muto and colleagues at Japan’s Toyohashi University of Technology (Toyohashi Tech) have developed an innovative method for producing CNT (carbon nano-tube) resin composite material   that only requires 1/100 of the conventional amount of CNT additive to produce electrical conductivity in the composite material.


In this method, CNTs were mixed in an electrolyte solution and added to the composite, where the CNTs were adsorbed onto the surfaces of the resin particles due to electrostatic adsorption.  This procedure enabled the production of electrical conducting composites by the addition of a small quantity CNTs.


Importantly, the electrical conductivity of the composite material was easily controlled by changing the amount of electrolyte added to the composite; namely, the concentration of CNTs adsorption onto the resin particles.


Notably, this approach enables significant reductions in both the production costs and the production time compared with conventional methods for manufacturing conductive resins.


The researchers are confident that adding particles with charged surfaces will enable the production of a wide range of composite materials such as metals, ceramics, and polymers.  This method is expected to find applications in the production of enzymes and cosmetics.


This work is supported by a Grant-in-Aid for Young Scientists at NEDO (New Energy and Industrial Technology Development Organization).

Thursday, August 11, 2011

Vascular composites enable dynamic structural materials

Taking their cue from biological circulatory systems, University of Illinois researchers have developed vascularized structural composites, creating materials that are lightweight and strong with potential for self-healing, self-cooling, metamaterials and more.

"We can make a material now that's truly multifunctional by simply circulating fluids that do different things within the same material system," said Scott White, the Willet Professor of who led the group. "We have a vascularized structural material that can do almost anything."

are a combination of two or more materials that harness the properties of both. Composites are valued as structural materials because they can be lightweight and strong. Many composites are fiber-reinforced, made of a network of woven fibers embedded in – for example, graphite, fiberglass or Kevlar.

The Illinois team, part of the Autonomous Materials Systems Laboratory in the Beckman Institute for Advanced Science and Technology, developed a method of making fiber-reinforced composites with tiny channels for liquid or gas transport. The channels could wind through the material in one long line or branch out to form a network of capillaries, much like the vascular network in a tree.

"Trees are incredible , but they're dynamic too," said co-author Jeffrey Moore, the Murchison-Mallory professor of chemistry and a professor of materials science and engineering. "They can pump fluids, transfer mass and energy from the roots to the leaves. This is the first step to making synthetic materials that have that kind of functionality."

The key to the method, published in the journal Advanced Materials, is the use of sacrificial fibers. The team treated commercially available fibers so that they would degrade at high temperatures. The sacrificial fibers are no different from normal fibers during weaving and composite fabrication. But when the temperature is raised further, the treated fibers vaporize – leaving tiny channels in their place – without affecting the structural composite material itself.

"There have been vascular materials fabricated previously, including things that we've done, but this paper demonstrated that you can approach the manufacturing with a concept that is vastly superior in terms of scalability and commercial viability," White said.

In the paper, the researchers demonstrate four classes of application by circulating different fluids through a vascular composite: temperature regulation, chemistry, conductivity and electromagnetism. They regulate temperature by circulating coolant or a hot fluid. To demonstrate a chemical reaction, they injected chemicals into different vascular branches that merged, mixing the chemicals to produce a luminescent reaction. They made the structure electrically active by using conductive liquid, and changed its electromagnetic signature with ferrofluids – a key property for stealth applications.

Next, the researchers hope to develop interconnected networks with membranes between neighboring channels to control transport between channels. Such networks would enable many chemical and energy applications, such as self-healing polymers or fuel cells.

"This is not just another microfluidic device," said co-author Nancy Sottos, the Willett professor of science and engineering and a professor of aerospace engineering. "It's not just a widget on a chip. It's a structural material that's capable of many functions that mimic biological systems. That's a big jump."

More information: The paper, "Three-Dimensional Microvascular Fiber-Reinforced Composites," is available online at http://onlinelibra … 01100933/pdf

Provided by University of Illinois at Urbana-Champaign (news : web)

Tuesday, August 9, 2011

Self-healing, self-cooling, metamaterials: Vascular composites enable dynamic structural materials

Taking their cue from biological circulatory systems, University of Illinois researchers have developed vascularized structural composites, creating materials that are lightweight and strong with potential for self-healing, self-cooling, metamaterials and more.


"We can make a material now that's truly multifunctional by simply circulating fluids that do different things within the same material system," said Scott White, the Willet Professor of aerospace engineering who led the group. "We have a vascularized structural material that can do almost anything."


Composite materials are a combination of two or more materials that harness the properties of both. Composites are valued as structural materials because they can be lightweight and strong. Many composites are fiber-reinforced, made of a network of woven fibers embedded in resin -- for example, graphite, fiberglass or Kevlar.


The Illinois team, part of the Autonomous Materials Systems Laboratory in the Beckman Institute for Advanced Science and Technology, developed a method of making fiber-reinforced composites with tiny channels for liquid or gas transport. The channels could wind through the material in one long line or branch out to form a network of capillaries, much like the vascular network in a tree.


"Trees are incredible structural materials, but they're dynamic too," said co-author Jeffrey Moore, the Murchison-Mallory professor of chemistry and a professor of materials science and engineering. "They can pump fluids, transfer mass and energy from the roots to the leaves. This is the first step to making synthetic materials that have that kind of functionality."


The key to the method, published in the journal Advanced Materials, is the use of sacrificial fibers. The team treated commercially available fibers so that they would degrade at high temperatures. The sacrificial fibers are no different from normal fibers during weaving and composite fabrication. But when the temperature is raised further, the treated fibers vaporize -- leaving tiny channels in their place -- without affecting the structural composite material itself.


"There have been vascular materials fabricated previously, including things that we've done, but this paper demonstrated that you can approach the manufacturing with a concept that is vastly superior in terms of scalability and commercial viability," White said.


In the paper, the researchers demonstrate four classes of application by circulating different fluids through a vascular composite: temperature regulation, chemistry, conductivity and electromagnetism. They regulate temperature by circulating coolant or a hot fluid. To demonstrate a chemical reaction, they injected chemicals into different vascular branches that merged, mixing the chemicals to produce a luminescent reaction. They made the structure electrically active by using conductive liquid, and changed its electromagnetic signature with ferrofluids -- a key property for stealth applications.


Next, the researchers hope to develop interconnected networks with membranes between neighboring channels to control transport between channels. Such networks would enable many chemical and energy applications, such as self-healing polymers or fuel cells.


"This is not just another microfluidic device," said co-author Nancy Sottos, the Willett professor of materials science and engineering and a professor of aerospace engineering. "It's not just a widget on a chip. It's a structural material that's capable of many functions that mimic biological systems. That's a big jump."


This work was supported by the Air Force Office of Scientific Research.


Story Source:


The above story is reprinted (with editorial adaptations) from materials provided by University of Illinois at Urbana-Champaign.

Journal Reference:

Aaron P. Esser-Kahn, Piyush R. Thakre, Hefei Dong, Jason F. Patrick, Vitalii K. Vlasko-Vlasov, Nancy R. Sottos, Jeffrey S. Moore, Scott R. White. Three-Dimensional Microvascular Fiber-Reinforced Composites. Advanced Materials, 2011; DOI: 10.1002/adma.201100933

Sunday, August 7, 2011

HIVOCOMP aims to develop new materials that will bring carbon fibre composites to automotive applications

2011 marked the start of an ambitious European collaborative research project that focuses on advancing the state-of-the-art of composite materials technology to bring it closer to mass-production for automotive applications.


HIVOCOMP will last in total 4 years and intends to significantly speed up the composites production process, a key factor for the establishment of plastics in the commercial vehicles market.


Project partners include three large European automotive OEMs (VW, Daimler, CRF), suitcase manufacturer Samsonite, four highly specialised suppliers in the field of composite materials and their applications, and six leading universities that constitute the cutting edge of composite materials research in Europe.


HIVOCOMP will develop further two material systems that show unique promise for costeffective high-volume production of high performance carbon fibre reinforced plastic (CFRP) parts: advanced polyurethane (PU) thermoset matrix materials and thermoplastic PP-based and PA6-based self-reinforced polymer composites with continuous carbon fibre reinforcements.


The performance, production cost and recyclability of new CFRP materials systems will be thoroughly tested and benchmarked to ensure the results reach and exceed cost, safety and environmental targets. Validated demonstrator parts will be produced in 2013, ensuring the large-scale societal impact of the innovations.


The project puts primary focus on the passenger cars, including hybrid and fully electric platforms now entering the market, but it has identified spin-off applications in other transport-related sectors as well.


HIVOCOMP (Advanced materials enabling High-Volume road transport applications of lightweight structural COMPosite parts) launched officially in October 2010 and is funded under the topic NMP-2009-2.5-1 “Light high-performance composites” of the 7th Framework Programme for Research and Technological Development. Project coordinator is Prof. Ignaas Verpoest of Katholieke University Leuven.


 

Friday, June 3, 2011

Making materials to order: Fine-tuning mechanical, electrical, thermal, other properties of composites

 A team of researchers at MIT has found a way to make complex composite materials whose attributes can be fine-tuned to give various desirable combinations of properties such as stiffness, strength, resistance to impacts and energy dissipation.


The key feature of the new composites is a “co-continuous” structure of two different with very different properties, creating a material combining aspects of both. The co-continuous structure means that the two interleaved materials each form a kind of three-dimensional lattice whose pieces are fully connected to each other from side to side, front to back, and top to bottom.


The research — by postdoc Lifeng Wang, who worked with undergraduate Jacky Lau and professors Mary Boyce and Edwin Thomas — was published in April in the journal Advanced Materials. The research was funded by the U.S. Army through MIT’s Institute for Soldier Nanotechnologies.


The initial objective of the research was to “try to design a material that can absorb energy under extreme loading situations,” Wang explains. Such a material could be used as shielding for trucks or aircraft, he says: “It could be lightweight and efficient, flexible, not just a solid mantle” like most present-day armor.


In most conventional materials — even modern advanced composites — once cracks start to form they tend to propagate through the material, Wang says. But in the new co-continuous materials, crack propagation is limited within the microstructure, he says, making them highly “damage tolerant” even when subjected to many crack-producing events.


Some existing composite materials, such as carbon-carbon composites that use fibers embedded in another material, can have great strength in the direction parallel to the fibers, but not much strength in other directions. Because of the continuous 3-D structure of the new composites, their strength is nearly equal in all dimensions, Wang says.


Thomas, the Morris Cohen Professor of Materials Science and Engineering and head of MIT’s Department of Materials Science and Engineering, says that in most existing , the fibers form disordered mass with “zero continuity,” while the other material — typically a resin that fills the space and then hardens — is continuous and connected in three dimensions. The material that forms the continuous structure “tends to dominate the properties” of the composite, he says. “But when both materials are continuous, you can get benefits that are surprisingly synergistic, not just additive.”


In their experiments, the MIT researchers combined two polymer materials with quite different properties: one that is glass-like, strong but brittle, and another that is rubber-like, not so strong, but tough and resilient. The result, Thomas says, was a material “that is stiff, strong and tough.”


In the quest for new materials with specific combinations of properties, Thomas says, “we’ve pretty much exhausted the natural homogeneous materials,” but the new fabrication techniques developed in this research can “take to another level” the material development process.


The researchers designed the new materials through computer simulations, then made samples that were tested under laboratory conditions. The simulations and the experimental data “agree nicely,” Thomas says. While this initial research focused on tuning the material’s mechanical properties, the same principles could be applied to controlling a material’s electrical, thermal, optical or other properties, the researchers say.


The process could even be used to make materials with "tunable" properties: for example, to allow certain frequencies of phonons — waves of heat or sound — to pass through while blocking others, with the selection of frequencies tuned through changes in mechanical pressure. It could also be used to make materials with shape-memory properties, which could be compressed and then spring back to a specific form.


Richard Vaia, acting chief of the Nanostructured and Biological Materials Branch at Wright-Patterson Air Force Base in Ohio, says this work is “an exciting demonstration of the crucial importance of architecture in materials-by-design concepts.”


Vaia says this work “provides an example of the future of composite and hybrid materialstechnology where direct-write fabrication, printing technologies and complex fiber-weaving techniques are not simply manufacturing tools, but an integral part of a robust, implementable digital design and manufacturing paradigm.”


The next step in the research, Thomas says, is to make co-continuous composites out of pairs of materials whose are even more drastically different than those used in the initial experiments, such as metal with ceramic, or polymer with metal. Such composites could be very different from any materials made before, he says.
This story is republished courtesy of MIT News (http://web.mit.edu/newsoffice/), a popular site that covers news about MIT research, innovation and teaching.

Provided by Massachusetts Institute of Technology (news : web)