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Showing posts with label Automotive. Show all posts
Showing posts with label Automotive. Show all posts

Wednesday, February 22, 2012

The Future for Powering Electric and Hybrid Cars

Engineerblogger
Feb 2, 2012


The Tesla electric vehicle wirelessly charging at the 2012 Consumer Electronics Show. (Credit: Doug Kline)

This year’s iconic North American International Auto Show featured a wave of new hybrid and electric cars that suggest the vehicles have truly come into their own.
But what’s the future for the technology needed to power these cars? In particular, can the industry really expect in the coming years an electric car battery that is not only economical, but delivers the performance needed to make these cars a common site on the streets?

This was the topic of a recent roundtable discussion held by The Kavli Foundation with Seth Fletcher, Senior Editor at Popular Science, and two researchers in the field – Clare Grey at the University of Cambridge and Jeff Sakamoto at Michigan State University.

According to Fletcher, the dynamics for innovation are falling into place. “A few years ago there were essentially no electric cars on the road in the United States,” said Fletcher, who is also the author of “Bottled Lightning: Superbatteries, Electric Cars, and the New Lithium Economy." “Now there are several thousand that people actually own, which is completely different than in the 1990s when people were leasing EV1s. Think about it: GM leased 800 EV1s over the course of three years. Last year alone, GM sold nearly 8,000 Volts.”

Better battery technology for powering these vehicles also looks promising. “There is much good work going on,” according to Jeff Sakamoto, Assistant Professor in Michigan State University's Department of Chemical Engineering and Materials Science. “Some of it is focused on exploring new battery configurations and chemistries. One, referred to as a 'solid state' battery, uses a solid ceramic electrolyte that can replace current, flammable liquid electrolytes. Other potentially interesting though challenging areas include research on lithium-air batteries. Researchers are also exploring how different electrode materials, particularly silicon, might be used to improve battery performance.”

Another innovative direction is redox flow batteries. “Basically, these batteries pump an electrolyte solution or powder in and out of the battery,” said Clare Grey, Professor in the University of Cambridge’s Department of Chemistry. “Most batteries today are closed, sealed systems, so you’re limited to the electrons you have in a contained space. Flow batteries get rid of that limitation…And more electrons out means cars with longer ranges.”

In 2011, Grey received The Royal Society’s Kavli Medal and Lecture for work that included groundbreaking in situ studies on batteries and fuel cells. Grey recently noted that not only the technology is promising; incentives are changing in countries like the United Kingdom so the industry itself is invested in the success of these cars. “[In Europe,] emissions are regulated across each manufacturer’s fleet of vehicles. So as a result, BMW and Mercedes… are really pushing their electric and hybrid vehicle programs to reduce their fleets’ overall emissions. …And the good thing is, people are buying these cars. At the high-end of the market, it seems, people don’t mind paying a bit extra for electric or hybrid vehicles. In the most optimistic scenario that demand will eventually trickle down into the lower-end markets as well."

Source: Newswise

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Monday, February 20, 2012

Putting new vehicles to the test: Creating standards and codes to test performance and safety

Engineerblogger
Feb 20, 2012


Computer software is being used to test car performance before prototypes are built.

Whether designing a power plant, developing a space module, or building a new car, designers and developers know they must meet stringent codes and standards before their projects get a green light.

Over the past century and even before, independent organizations and governments have been creating standards and codes to test performance and safety.

"Typically, in almost all industries, you have regulations by law," says William E. Gest, a recognized expert on the auto industry.

He considers "CFR Title 49" his bible, and more specifically Part 571, which covers Federal Motor Vehicle Safety Standards (FMVSS). Under Title 49, part of the Code of Federal Regulations (CFR), The National Highway Traffic Safety Administration has a legislative mandate to issue FMVSS (standards and regulations).

The standards, first issued in 1967, are defined as the minimum requirements for motor vehicles and equipment to protect the public against unreasonable risk of accidents occurring as a result of the design, construction, or performance of a motor. Motor vehicle manufacturers and equipment suppliers must conform and certify their compliance.

Advanced Testing Techniques

During four decades as a professional engineer working at companies such as General Motors and TRW, Gest has seen many changes in performance testing and standards, and he passes along his learning to the next generation of engineers as an adjunct professor at the Ira A. Fulton Schools for Engineering, Arizona State University, Tempe. He teaches a capstone course on ethics and business practices related to the impact of mechanical and aerospace engineering in a global society.

With sophisticated software and advanced methodologies, the auto industry can do most, if not all, of its testing in the analysis phase using a computer-aided design (CAD) model for any kind of analysis, including crash analysis, and whatever else is needed.

Gest, also a senior consulting engineer at Augspurger Komm Engineering, Phoenix, AZ, says the major companies today validate the design of a vehicle before building costly prototypes. "The analysis tools are so good today that the goal is not to have to run more than one actual vehicle test," he adds.

"The companies know what things need to be done and are all self-certified. Technically, a company doesn't have to run any tests if they sign off on their own designs. But if there is a problem with the car, and you have to go to court and have no testing to back up your statement that the car's OK, you will have to write a very large check," says Gest.

Spotlight on Safety

While the regulations require additional complex work and add to the sticker price even though fewer prototypes are needed, Gest says it's been a good thing. Not only has vehicle safety improved over the years, but so, too, have other aspects such as emissions. He estimates the testing probably accounts for about 15–20% of the cost of a vehicle.

Complicating the certification process are requirements that may differ from country to country and in some cases, state to state, with things like emissions and noise, which are regulated by a different government agency, the U.S. Environmental Protection Agency.

With the cost of a prototype in the neighborhood of $250,000, Gest sees even more reliance on prevalidation by computer. "In the past, we might have built maybe 40 prototypes before a car gets to market. Today, we're probably seeing as few as 10 to 15," he says.

Gest emphasizes to his students that engineering ethics mandate the number one thing is to do no harm. "Whatever your design is, make sure it's safe," he says.

Source: ASME

Thursday, February 16, 2012

Automotive: Can Tesla Survive?

Technology Review
Feb 16, 2012


Hard ride: Tesla's Roadster. Credit: Tesla

The year 2012 will be an important one for Tesla Motors. Amid growing competition from established automakers, Tesla plans to sell a new Model S luxury sedan in July, and to supply Toyota with batteries, motors, and control systems for a new electric RAV4 SUV. The success of these efforts could determine whether the company survives long-term—and what it might look like if it does.

Even if Tesla can't succeed as an independent automaker, it could still be acquired by a bigger company, or live on as a supplier to major automakers.

Tesla is best known for its electric sports car, the Roadster. But from its early days, the company has hoped to move beyond the Roadster to lower-priced electric vehicles sold in much higher volumes. Earlier this week, Tesla revealed a luxury electric SUV, the Model X, which it plans to sell starting in 2013.

But the automotive industry has changed dramatically since Tesla was founded in 2003. At the time, changes to a California mandate that had required carmakers to make electric cars had just led GM to cancel the electric EV1, and Toyota to cancel the original electric RAV4. By and large, Tesla had the electric vehicle market to itself, its only competition coming from a handful of other small electric car companies.

Now, GM, Nissan, and others are selling electric vehicles in numbers that after one year far exceed the total production of the EV1. In fact, every major automaker has announced plans to sell electric cars of some type. Furthermore, vehicles from companies including BMW and Mercedes will compete directly with Tesla in the market for high-performance or luxury electric vehicles.
To read more click here...

Wednesday, February 15, 2012

The Future of Robotics in Manufacturing: Moving to the Other Side of the Factory

Industry Week
Feb 15, 2012


A robotic arm prepares to place a door on a BMW at the automaker's Spartanburg, S.C., plant. Using electronic-measuring technology, the robot takes multiple photos of the relationship between the vehicle and the door and adjusts its position to eliminate any potential gaps in the fit caused by variations in the sheet metal.

To boldly go where they've never gone before, robots will need to become smarter, cheaper and easier to use. The industry could turn to an unlikely source to get there.

The birth of a BMW sports-activity vehicle begins with a few pieces of metal and the whirs, thrusts and twists of a robot.

Although BMW employs more than 7,000 people at its sprawling factory complex in Spartanburg, S.C., humans are a rare sight on the X5/X6 line in the body shop. There, a battalion of more than 380 robots -- there are nearly 1,000 of them plantwide -- fashions X5 vehicle bodies from 443 separate pieces of metal, performing 237 stud welds and more than 6,000 spot welds on each one, among a flurry of other tasks. The body shop also boasts BMW's first fully automated hang-on fit line, where robots attach the doors, hoods, hatches and fenders to the vehicles. The "Best Fit" system, which debuted on Spartanburg's X3 line in 2010, automates a process so critical to BMW's quality standards that it once was trusted only to human hands. "It was the one part of our shop that was almost 100% manual operations," says Herman Adams, the plant's body shop maintenance planner. "The rest of our shop was about 95% automation, so it was a really stark contrast."

While robots now do nearly 100% of the work in the body shop at BMW Spartanburg, it's a completely different story on the assembly lines. Walk the floor of Spartanburg's two mammoth assembly halls, observes Erik Nieves, technology director for Yaskawa America Inc.'s Motoman Robotics Division, and you see "an army of biology." Although automation undoubtedly plays a role in vehicle assembly at BMW Spartanburg -- a robotic arm, for example, plunks the sunroof into a hole on top of the BMW X3 -- the final-assembly process is largely the domain of people. And it's no different at any other major automotive plant. Consequently, Nieves believes that the future of robotics is about finding a way to move robots "to the other side of the wall" -- to the assembly line.
To read more click here...

GM IntelliLink Helps Drivers Get Connected

Engineerblogger
Feb 15, 2012


The IntelLink system lets you organize icons according to your preferences.  Credit: GM

The 2012 GMC Terrain smaller SUV’s standard Color Touch Radio is now available with IntelliLink, which provides smartphone connectivity and voice activated control of the audio system. Simple commands initiate a phone call, change a station, stream internet radio, and even control an iPod.

IntelliLink’s interface is designed to be used with two hands on the wheel as often as possible, and its layout was created with specific emphasis on minimizing distractions. Here are some other important things to know about the system:
  • Like most smartphones, the IntelliLink homescreen is configurable. An array of icons for phone, radio, and other functions mimics the displays of popular mobile devices, and each icon can be shifted or removed, based on the driver’s needs and wants.
  • IntelliLink has icons for popular internet radio providers Pandora and Stitcher for Bluetooth streaming through a smartphone, Pandora listeners can give a song a “thumbs-up” or “thumbs-down” through Terrain’s seven-inch touchscreen.
  • Most of IntelliLink’s features can be controlled through a hands-free voice control system powered by Nuance. Drivers can place a phone call, play an artist, or tune to a radio station without their eyes leaving the road.
  • An MP3 player isn’t required to play music through Intellilink. Owners can bring their music collections into the car by plugging a USB flash drive into a port in the center console.
  • Album art and artist information for songs playing from a device are displayed on Terrain’s color touch screen. The Gracenote data that allows this also makes voice activation more conversational, identifying nicknames like “The Boss” or “The Stones.”

GMC’s implementation of the Gracenote media database includes a piece of exclusive, patent-pending technology, according to General Motors lead engineer Tony Kraatz.

“Gracenote is typically limited to devices plugged in to the USB port,” he said. “With IntelliLink, we are the first company to run Bluetooth streaming audio through the Gracenote database to display album art for music players connected wirelessly.”

“About 70 percent of all new car buyers want some form of connectivity,” said Micky Bly, executive director leading GM’s infotainment engineering efforts, citing GM research. “Whether it’s because they want to listen to their favorite music or hear movie times on the way to the theater, today’s car buyer expects so much more out of their time in a car.”

The GMC Terrain talks with smartphones in other ways than just IntelliLink. With the OnStar RemoteLink app available for iPhone and Android, drivers can use their phones to lock and unlock doors or check fuel and tire pressure levels. On models equipped with remote start, the app can also start the engine from anywhere a cell phone signal is present.

IntelliLink is available now for the 2012 GMC Terrain SLT-2 V-6 and is coming soon to all SLT models. Last week, GMC debuted IntelliLink connectivity for the redesigned 2013 Acadia and Acadia Denali, on sale in late 2012.

About GMC  

GMC has manufactured trucks since 1902, and is one of the industry's healthiest brands. Innovation and engineering excellence is built into all GMC vehicles and the brand is evolving to offer more fuel-efficient trucks and crossovers, including the Terrain smaller SUV and Acadia crossover. GMC is the only manufacturer to offer three full-size hybrid trucks with the Yukon, Yukon Denali SUVs and the Sierra pickup. The new Sierra Heavy Duty pickups are the most capable and powerful trucks in the market.

Source: General Motors

Tuesday, February 14, 2012

A Suspension System with Smooth Moves

Engineerblogger
Feb 14, 2012


Credit: ASME


"Don't drink and drive ... you might hit a bump and spill your drink." So goes one of the stupider attempts at bumper sticker humor. Someday soon, though, the drivers of the world will no longer get the joke. Once the active electromagnetic suspension system developed by Bart Gysen, a researcher at Eindhoven University in the Netherlands, hits the road, folks behind the wheel will have a much better chance of keeping their drinks in their cups.

The Design

Gysen's design is a simple one in appearance. Inside the suspension spring that keeps the car levitated is an aluminum cylinder containing high-powered magnets. The cylinder also acts as a passive suspension system as a safety backup. The active system uses only 75 watts of energy, about the amount needed to power a car's air conditioner. The cylinder also regenerates energy, using the bumps in the road to power itself. If Gysen, or an auto manufacturer, were willing to discard the passive portion of the system, the active suspension would power itself 100%.

There are three sensors on the front of the car that measure the wheels' movement in relation to the road and the body of the car. It takes only milliseconds for the information to be translated into a reactive force from the magnets. The result is a ride that cuts down on jolts by 60%.

That percentage would be even higher if the road and its undulations could be measured before they got to the wheels, perhaps with lasers that read the terrain

in front of the car. Somehow, though, the system would have to know the material of the road, be it ice, pavement, wet leaves, or cream cheese. For now, Gysen is sticking with his trio of sensors.

Bart Gysen and a test car fitted with the new suspension system. Photo: Eindhoven University.

Control and Comfort

An active suspension has other advantages in addition to comfort. Typically, a car taking a sharp turn (or even a dull one) has a weight shift from one side to the other. The two inner wheels end up taking the lion's share of the force and lose a percentage of their traction. This can result in a loss of control or worse, a tipping or flipping of the car. Gysen's system can keep the weight of the car evenly distributed over all four wheels, so that the vehicle remains parallel to the ground throughout a turn. "You can put the gravity back in the center of the car, and get a better grip on the road," says Gysen.

Smart programming will tell the system when control is needed over comfort and when comfort trumps all. (It's easy to imagine, though, a system where the driver could choose, with the push of a button, between race-car mode and limo mode). The size and shape are the same as traditional suspension systems and can fit right onto the body of any car.

At the moment, the only prototype resides on the test vehicle, a BMW 530. While including the system on future vehicles might seem like a no-brainer, the automotive industry is currently guarding its coffers and is less than willing to lighten them for the research and development needed to put Gysen's invention on pavement. "It's not a bright future," bemoans Gysen. "There's no market pull at the moment. But if the system shows its advantage in the public, then there will be much more attention."

If consumers want active suspension, it seems manufacturers have to end suspension of action.

Source: ASME

Additional Information:

Monday, February 6, 2012

Saudi Aramco develops fuel formula to cut gas engines’ CO2 emissions

Engineerblogger
Feb 5, 2012


Credit: Saudi Aramco

A team from Saudi Aramco’s Research & Development Center (R&DC) and FEV, an engine design company in Germany, recently participated in a technology demonstration event in Aachen, Germany. The event marked the culmination of a project that was developed as a means of showcasing the potential of specific fuel formulas in lowering the carbon dioxide (CO2) emissions in modern gasoline engines.


The scientists of R&DC’s Fuel Team chose an innovative approach in fuel development by not working on future fuels in isolation, but rather looking at the fuel and the engine as a single system to be optimized synergistically. For the purpose of this research, R&DC has partnered with FEV, which brought the engine testing expertise to the table.

“The joint research has resulted in experimental fuels that enable future engines to be even smaller and capable of running on higher boosting pressures, without compromising performance,” said Faisal M. Al-Faqeer, manager of R&DC. “The greatest achievement though is that this fuel/engine combination consumes significantly less fuel per kilometer travelled and consequently will emit less CO2, while it is expected that it will not increase the cost of motoring.”

During the event, the first prototype car using this fuel/engine concept was presented by the project scientists. Members of the management of R&DC and FEV were able to get firsthand experience by driving a car fueled by Saudi Aramco’s new experimental fuel. “FEV’s own test track provided the ideal environment for such a test, where driving patterns from city cruising to high speed motorway travel could be realized in a safe and controlled way,” said Amer A. Amer, Fuel Technology R&D Team leader.

The experience showed that this future fuel concept could be achieved without compromising car performance. The car was driven with the experimental fuel, showing that this new crude oil-based product developed by Saudi Aramco is compatible with existing engine technology. For R&DC, this marks the first step toward becoming a leading force in research and development of future fuels for transportation.

“As a next step, the Saudi Aramco team has started to assess implications from producing such fuels, looking at energy needs and consequently the CO2 footprint of manufacturing and associated cost,” said Amer.

Al-Faqeer commented on the unique approach adopted by R&DC in taking research on future fuels as “a system approach in cooperation with a competent partner from the field of engine research and development.” He continued “this has proven to be very successful, demonstrating the potential benefit, both in terms of CO2 reduction and potential cost.”

The skills of Saudi Aramco’s scientists complement perfectly those of their FEV counterparts. The teams have now set their sights on another challenge for the coming year: focusing on demonstration of economic and ecological benefits in a diesel type fuel/engine system.

Source: Saudi Aramco

Friday, February 3, 2012

New zeolite material may solve diesel shortage

Engineerblogger
Feb 3, 2012

The microporous molecular structure of a zeolite, ZSM-5. Credit: Wikipedia

A recently published article in Nature Chemistry by a research team at Stockholm University and the Polytechnic University of Valencia in Spain presents a new porous material that evinces unique properties for converting gasoline directly into diesel

World fuel consumption is shifting more and more to diesel at the expense of gasoline. A recently published article in Nature Chemistry by a research team at Stockholm University and the Polytechnic University of Valencia in Spain presents a new porous material that evinces unique properties for converting gasoline directly into diesel. The material has a tremendously complex atomic structure that could only be determined with the aid of transmission electron microscopy.

The aluminosilicate, which has been named ITQ-39, belongs to the zeolite class and has a porous structure that enables sufficiently small molecules to pass through it. On their way through, they can react with other molecules and create a desired product. The new material has channels of varying size and shape in different directions. These variously shaped channels entail that a molecule that is transported inside the material can be limited in different ways, depending on the direction it travels.

ITQ-39 is the most complex zeolite material ever discovered. Its structure was determined by a research team at Stockholm University headed by Professor Xiaodong Zou, with the help of electron crystallography. On an electron microscope, extremely small crystals can be studied, in this case down to a couple of nanometers. What makes ITQ-39 such a complicated material is that, unlike most other crystalline material, it is not perfectly ordered. The material studied has a type of chaotic order. To be able to understand the material in the smallest detail requires both a model of how the atoms are arranged in the minimal ordered areas and a model of how these domains are then linked together into crystals. This disorder can be studied with the aid of high-resolution images taken with an electron microscope that can then serve as a basis for creating a model of the atomic structure of the material. This is what researchers Tom Willhammar, Junliang Sun, Wan Wei, Peter Oleynikov, Daliang Zhang, and Xiaodong Zou at Stockholm University present in the latest issue of the scientific journal Nature Chemistry.

The material, which was produced by a research team headed by Professor Avelino Corma in the Polytechnic University of Valencia, has proven to be an excellent catalytic converter for turning gasoline into diesel. This is a process that has become ever more important with the marked growth in the demand for diesel in recent years.

The project is funded by the Swedish Research Council, VINNOVA, the Göran Gustafsson Foundation, and the Knut and Alice Wallenberg Foundation.

Facts about zeolites:

Zeolite means 'boiling stone' in Greek. Zeolite is a collective name for a group of natural and synthetic minerals with an open crystal structure. They mainly consist of aluminum silicate and comprise some 60 naturally occurring minerals and about a hundred synthetic counterparts.

Zeolites contain masses of nanometer-sized pores and channels and can be used as catalytic converters, ion-exchangers, and adsorbents. Because zeolites have so many pores and intersecting channels, they have a huge internal surface area; one gram of a zeolite can have a surface about the size of half a football field.

Source: Eurek Alert

Additional Information:

A 'natural' solution for transportation

Argonne National Laboratory
Feb 2, 2012
Researchers at Argonne have begun to investigate adding one more contender to the list of possible energy sources for light-duty cars and trucks: compressed natural gas (CNG). Image courtesy of Mercedes Benz

As the United States transitions away from a primarily petroleum-based transportation industry, a number of different alternative fuel sources—ethanol, biodiesel, electricity and hydrogen—have each shown their own promise. Hoping to expand the pool even further, researchers at the U.S. Department of Energy's Argonne National Laboratory have begun to investigate adding one more contender to the list of possible energy sources for light-duty cars and trucks: compressed natural gas (CNG).

Compressed natural gas is composed primarily of methane, which when compressed occupies less than one percent of the volume it occupies at standard pressure. CNG is typically stored in cylindrical tanks that would be carried onboard the vehicles it fuels.

Because the domestic production of natural gas has increased dramatically over the past ten years, making a large number of the cars and light trucks currently on the road CNG-compatible would help to improve U.S. energy security. "As a country, we don't lack for natural gas deposits," said Argonne mechanical engineer Thomas Wallner. "There are fewer obvious challenges with direct supply than with most other fuels."

Natural gas currently comes primarily from deep underground rock structures, including shale. Recent improvements with hydraulic fracturing, or "fracking," a controversial process that some critics claim can hurt the environment, have made it economical for natural gas companies to extract a greater supply of natural gas from unconventional sources.

Like gasoline, both the production and combustion of CNG release greenhouse gases into the atmosphere. To be able to make an accurate comparison to gasoline, scientists and engineers will need to look at each stage of the fuel's production and use, said Argonne environmental scientist Andrew Burnham.
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Scratching away at automotive surfaces: Characterising new materials and coatings for clean and easy-to-maintain surfaces

Engineerblogger
Feb 3, 2012




Stephanie Baron and Gerard Liraut of Renault presented a paper at the 2011 VDI plastics in automotive conference on characterising new materials and coatings for clean and easy-to-maintain surfaces. They addressed issues of maintaining high gloss, avoiding dust attraction and ongoing concerns over visibility of scratches on through-coloured automotive interior mouldings.

Baron pointed out that while PP compounds are considered materials with good cost performance and recyclability, talc fillers in PP are still thought to cause scratches to become visible, with white marks that are especially noticable on dark mouldings.

"Some competitors use materials improved by sliding agents," Baron said. "But a known inconvenience is that this kind of agent with a base of amides exudes with heat and creates a sticky effect." Baron did, however, admit that some improved additives are available that are said to have resolved this problem of migration to the surface.

Similarly with dust attraction, some of Renault's competitors are using additives with anti-static action. But a sticky effect is generated here, too, as UV agents and anti-static agents interact in the presence of air.

And in order to have permanent anti-dust effects, the concentration of additive needed is so high that "the prices increase and mechanical properties decline", Baron complained. She pointed out that Asian automotive OEMs have found an easy solution by making their interiors in light colours, so that the dust - or scratches for that matter - is not so visible.

Renault, on the other hand, has tested permanent anti-static additives, only to find that the plastics tested were just as dirty as other parts after nine months. A more durable anti-static effect or one that could be reactivated would therefore be of interest to Renault.

Looking ahead, Renault seeks to make interior plastic parts with anti-adherent hydrophobic and oleophobic surfaces, to limit soiling. Otherwise, adapting the architecture of the cockpit for easy, simple and efficient cleaning would be at least "an important preliminary step", Baron concluded.

One of the latest measures to address scratch visibility has been applied by Styron for the UV-stable PP-based Inspire compounds used on the new Range Rover Evoque. The compounds are used in interior parts such as the shrouds around the steering column, centre console cladding and trim panels in the rear load space compartment.

Source: European Plastics News

Thursday, February 2, 2012

Wireless power could revolutionize highway transportation

Engineerblogger
Feb 2, 2012

Stanford University researchers are developing a technology that uses magnetic fields (shown in red) to wirelessly charge electric vehicles cruising at highway speeds. Credit: Sven Beiker, CARS/Stanford University

A Stanford University research team has designed a high-efficiency charging system that uses magnetic fields to wirelessly transmit large electric currents between metal coils placed several feet apart. The long-term goal of the research is to develop an all-electric highway that wirelessly charges cars and trucks as they cruise down the road.

The new technology has the potential to dramatically increase the driving range of electric vehicles and eventually transform highway travel, according to the researchers. Their results are published in the journal Applied Physics Letters (APL).

"Our vision is that you'll be able to drive onto any highway and charge your car," said Shanhui Fan, an associate professor of electrical engineering. "Large-scale deployment would involve revamping the entire highway system and could even have applications beyond transportation."
Driving range

A wireless charging system would address a major drawback of plug-in electric cars – their limited driving range. The all-electric Nissan Leaf, for example, gets less than 100 miles on a single charge, and the battery takes several hours to fully recharge.

A charge-as-you-drive system would overcome these limitations. "What makes this concept exciting is that you could potentially drive for an unlimited amount of time without having to recharge," said APL study co-author Richard Sassoon, the managing director of the Stanford Global Climate and Energy Project (GCEP), which funded the research. "You could actually have more energy stored in your battery at the end of your trip than you started with."

The wireless power transfer is based on a technology called magnetic resonance coupling. Two copper coils are tuned to resonate at the same natural frequency – like two wine glasses that vibrate when a specific note is sung. The coils are placed a few feet apart. One coil is connected to an electric current, which generates a magnetic field that causes the second coil to resonate. This magnetic resonance results in the invisible transfer of electric energy through the air from the first coil to the receiving coil.

"Wireless power transfer will only occur if the two resonators are in tune," Fan noted. "Objects tuned at different frequencies will not be affected."

In 2007, researchers at the Massachusetts Institute of Technology used magnetic resonance to light a 60-watt bulb. The experiment demonstrated that power could be transferred between two stationary coils about six feet apart, even when humans and other obstacles are placed in between.

"In the MIT experiment, the magnetic field appeared to have no impact on people who stood between the coils," Fan said. "That's very important in terms of safety. "
Wireless charging

The MIT researchers have created a spinoff company that's developing a stationary charging system capable of wirelessly transferring about 3 kilowatts of electric power to a vehicle parked in a garage or on the street.

Fan and his colleagues wondered if the MIT system could be modified to transfer 10 kilowatts of electric power over a distance of 6.5 feet – enough to charge a car moving at highway speeds. The car battery would provide an additional boost for acceleration or uphill driving.

Here's how the system would work: A series of coils connected to an electric current would be embedded in the highway. Receiving coils attached to the bottom of the car would resonate as the vehicle speeds along, creating magnetic fields that continuously transfer electricity to charge the battery.

To determine the most efficient way to transmit 10 kilowatts of power to a real car, the Stanford team created computer models of systems with metal plates added to the basic coil design.

"Asphalt in the road would probably have little effect, but metallic elements in the body of the car can drastically disturb electromagnetic fields," Fan explained. "That's why we did the APL study – to figure out the optimum transfer scheme if large metal objects are present."

Using mathematical simulations, postdoctoral scholars Xiaofang Yu and Sunil Sandhu found the answer: A coil bent at a 90-degree angle and attached to a metal plate can transfer 10 kilowatts of electrical energy to an identical coil 6.5 feet away.

"That's fast enough to maintain a constant speed," Fan said. "To actually charge the car battery would require arrays of coils embedded in the road. This wireless transfer scheme has an efficiency of 97 percent."
Wireless future

Fan and his colleagues recently filed a patent application for their wireless system. The next step is to test it in the laboratory and eventually try it out in real driving conditions. "You can very reliably use these computer simulations to predict how a real device would behave," Fan said.

The researchers also want to make sure that the system won't affect drivers, passengers or the dozens of microcomputers that control steering, navigation, air conditioning and other vehicle operations.

"We need to determine very early on that no harm is done to people, animals, the electronics of the car or to credit cards in your wallet," said Sven Beiker, executive director of the Center for Automotive Research at Stanford (CARS). Although a power transfer efficiency of 97 percent is extremely high, Beiker and his colleagues want to be sure that the remaining 3 percent is lost as heat and not as potentially harmful radiation.

Some transportation experts envision an automated highway system where driverless electric vehicles are wirelessly charged by solar power or other renewable energy sources. The goal would be to reduce accidents and dramatically improve the flow of traffic while lowering greenhouse gas emissions.

Beiker, who co-authored the APL study, said that wireless technology might one day assist GPS navigation of driverless cars. "GPS has a basic accuracy of 30-40 feet," he said. "It tells you where you are on the planet, but for safety, you want to make sure that your car is in the center of the lane." In the proposed system, the magnetic fields could also be used to control steering, he explained. Since the coils would be in the center of the lane, they could provide very precise positioning at no extra cost.

The researchers also have begun discussions with Michael Lepech, an assistant professor of civil and environmental engineering, to study the optimal layout of roadbed transmitters and determine if rebar and other metals in the pavement will reduce efficiency.

"We have the opportunity to rethink how electric power is delivered to our cars, homes and work," Fan said. "We're used to thinking about power delivery in terms of wires and plugging things into the wall. Imagine that instead of wires and plugs, you could transfer power through a vacuum. Our work is a step in that direction."



Source:  Stanford University

Wednesday, February 1, 2012

Driving the green: Study suggests that electric-powered trucks will save money for businesses

MIT News
Feb 1, 2012



New MIT research suggests that electric delivery trucks, like this one, can help both the environment and the business bottom line. Photo courtesy of Staples

A company looking to purchase an electric-powered delivery truck today will likely experience some sticker shock: Such a vehicle costs nearly $150,000, compared to about $50,000 for the same kind of truck with a standard internal-combustion engine.

But before long — perhaps surprisingly — it’s a purchase that should pay for itself. That’s the conclusion of a new MIT study showing that electric vehicles are not just environmentally friendly, but also have the potential to improve the bottom line for many kinds of businesses.

The study, conducted by researchers at MIT’s Center for Transportation and Logistics (CTL), finds that electric vehicles can cost 9 to 12 percent less to operate than trucks powered by diesel engines, when used to make deliveries on an everyday basis in big cities.

“There has to be a good business case if there is going to be more adoption of electric vehicles,” says Jarrod Goentzel, director of the Renewable Energy Delivery Project at CTL and one of four co-authors of the new study. “We think it’s already a viable economic model, and as battery costs continue to drop, the case will only get better.”

Another of the paper’s co-authors, Clayton Siegert, a 2009 graduate of the CTL’s master’s of engineering in logistics program and a member of the Renewable Energy Delivery Project, presented the results in January at the IEEE Power and Energy Society Innovative Smart Grid Technologies Conference, in Washington. The paper will be published in a volume of the conference’s proceedings. It originated in a thesis project by two researchers who received the master’s of engineering in logistics from CTL in 2011, Andre De Los Rios and Kristen Nordstrom.
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Friday, January 27, 2012

Heavy going without lightweight materials

Engineerblogger
Jan 27, 2012


Source: iStock-Foto


Automobiles made of steel suffer from a weight problem, and racing yachts made of steel have no chance of winning regattas. Fiber-reinforced composites offer an alternative which has spread rapidly in the transport industry. Empa's offers an overview of the current situation and a preview of future developments.

Those who take an interest in innovation in the automobile industry might have thought that BMW and VW would have a head start in the use of carbon fiber structures in their vehicles. Last year both companies purchased shares in the supplier SGL Carbon. The competition hasn't been asleep, though, and companies like Daimler AG are hard on their heels. The car manufacturer based in Stuttgart has entered into a joint-venture with Toray Industries, the carbon fiber producer. Jan Krueger, of Daimler’s Research and Advanced Engineering division, is convinced that the victorious march of fiber-reinforced composite materials will continue unabated. The advantages are easy to see: the new materials are lightweight, with good crash properties and noise and vibration reducing characteristics. Daimler has accumulated a lot of experience in lightweight construction techniques using fiber-reinforced composites with its Mercedes SLR McLaren Supersport car. Two and a half thousand examples of the noble racing car have come off the conveyor belt, and in the meantime the new technologies involved have fed into the mass production lines. From summer 2012 the boot lid of the SL 63 AMG Sport Coupé will be made using fiber composites. Already 140,000 front axle leaf springs are manufactured every year for the Mercedes Sprinter using composite materials, and every second seat heating system built into cars made in Stuttgart boasts heating elements made of carbon fiber.

Crash simulation
Peter Fritzsche of the University of Applied Sciences of Northwestern Switzerland reported on the simulation of break and crash tests with fiber-reinforced composites materials. Although the complex and nonlinear behavior of these materials often produces surprising results, computer simulation of the characteristics has already enabled considerable progress to be made. The more accurately the plastic deformation of the composites can be modeled, the more precisely can components made of composites be designed for a specific application.


Mass production at minimum cost
The views of a large manufacturer with thousands of employees worldwide were presented by Wenzel Krause of Autoneum, formerly the automotive division of the Rieter company. Autoneum supplies car manufacturers in North and South America, Europe and Asia with carbon fiber composite components which are used in the engine wells, underbodies, passenger compartments and boots of their vehicles. In doing so, Autoneum uses and delivers some one hundred thousand tonnes of the material annually. High stiffness and impact resistance are characteristics particularly demanded of materials used for underbody protection, naturally at the lowest possible cost. The company utilizes various production methods to manufacture components with exactly the required properties. Glass fibers cut to various lengths are used to reinforce the components in specific ways. The highest possible degree of automation is absolutely essential in mass production applications.

The next Alinghi
Carbon fiber-reinforced composite materials have already been used for some time in special high-value applications, such as that field of non-plus ultra yacht construction, the America's Cup. Andreas Winistoerfer with his company CarboLink GmbH (and Empa spin-off) designs stays and ropes for these yachts. Money is of secondary importance, but if a component should fail this is seen all over the world by millions of viewers. Winistoerfer has been in this demanding business for 10 years now. In addition to items for yachts, CarboLink also supplies the crane manufacturer Liebherr with high-tech guys of carbon fiber. The industrial partner profits from a 50 to 70 per cent weight reduction and, thanks to improved fatigue characteristics, a lifetime of up to 15 times longer for the carbon fiber component compared to that of steel.


Fibers with liquid content
Empa’s (Rheocore) project is dedicated to creating improved tailor-made properties of composites materials by spinning fibers which contain branched channels of liquid. The aim is to create fibers which are flexible when bent slowly but react stiffly to rapidly acting forces. This effect could be used to create a new type of protective clothing which would be more comfortable to wear than anything available today. However the production of these liquid chambers in the fiber is anything but trivial, explained Rudolf Hufenus of Empa’s Advanced Fibers Laboratory. In the meantime the project team has established the mathematical foundations of the effect and completed modeling trials. The next step is the manufacture of a first prototype of the spinning nozzle.


Source: Swiss Federal Laboratories for Materials Science and Technology(EPMA)

Wednesday, January 25, 2012

Fold-up car of the future unveiled at EU

Engineerblogger
Jan 25, 2012


European Commission Chairman Jose Manuel Barroso unveils at EU headquarters in Brussels the first prototype of a revolutionary electric fold-up car designed in Spain's Basque country, the "Hiriko", the Basque word for "urban"

A tiny revolutionary fold-up car designed in Spain's Basque country as the answer to urban stress and pollution was unveiled Tuesday before hitting European cities in 2013.

The "Hiriko", the Basque word for "urban", is an electric two-seater with no doors whose motor is located in the wheels and which folds up like a child's collapsible buggy, or stroller, for easy parking.

Dreamt up by Boston's MIT-Media lab, the concept was developed by a consortium of seven small Basque firms under the name Hiriko Driving Mobility, with a prototype unveiled by European Commission president Jose Manuel Barroso.

Demonstrating for journalists, Barroso clambered in through the fold-up front windscreen of the 1.5-metre-long car.

"European ideas usually are developed in the United States. This time an American idea is being made in Europe," consortium spokesman Gorka Espiau told AFP.

Its makers are in talks with a number of European cities to assemble the tiny cars that can run 120 kilometres (75 miles) without a recharge and whose speed is electronically set to respect city limits.

They envisage it as a city-owned vehicle, up for hire like the fleets of bicycles available in many European cities, or put up for sale privately at around 12,500 euros.

Several cities have shows interest, including Berlin, Barcelona, San Francisco and Hong Kong. Talks are underway with Paris, London, Boston, Dubai and Brussels.

The vehicle's four wheels turn at right angles to facilitate sideways parking in tight spaces.

The backers describe the "Hiriko" project as a "European social innovation initiative offering a systematic solution to major societal challenges: urban transportation, pollution and job creation."

Source: AFP

Tuesday, January 24, 2012

Europe's Driverless Car : semi-autonomous BMW car being demonstrated on a German autobahn

Technology Review
Jan 24, 2012
Easy ride: A semi-autonomous BMW car being demonstrated on a German autobahn. It can accelerate, brake, and overtake slower vehicles on its own. Credit: BMW

Tucked away in the basement of an iconic office tower shaped like four engine cylinders, engineer Werner Huber is telling me about the joy of driving. We're here at BMW headquarters, in Munich, Germany—capital of Bavaria, and arguably of driving itself. But Huber oversees strategic planning for advanced driver assistance systems, so in a way, his job is to put an end to driving—at least as we know it.

"I think that in 10 to 15 years, it could be another world," Huber says. He's not willing to predict exactly what driving will look like then, but he's certain humans will be doing a lot less of it.

For many people, automated cars call to mind those high-tech vehicles with a rotating periscope on top that Google has been driving around California. But Huber and executives at other European automakers say the automated driving revolution is already here: new safety and convenience technologies are beginning to act as "copilots," automating tedious or difficult driving tasks such as parallel parking.

"Driverless" technology will initially require a driver. And it will creep into everyday use much as airbags did: first as an expensive option in luxury cars, but eventually as a safety feature required by governments. "The evolutionary approach is from comfort systems to safety systems to automatic driving," says Jürgen Leohold, executive director for research at Volkswagen Group in Wolfsburg, Germany.

Both BMW and Volkswagen are among the companies already demonstrating cars that drive themselves. In 2010, Volkswagen sent a driverless Audi TTS up Pike's Peak at close to race speeds. Like similar vehicles from Google, these automated vehicles use some combination of GPS, radar, lasers, ultrasonic sensors, and optical cameras to create a constantly updated, 360-degree model of the surrounding environment, which an in-car computer can use to navigate.

But European automakers say their strategy is to move toward greater levels of autonomy incrementally, depending on what does well in showrooms.

Buyers of European luxury cars are already choosing from a menu of advanced options. For example, for $1,350, people who purchase BMW's 535i xDrive sedan in the United States can opt for a "driver assistance package" that includes radar to detect vehicles in the car's blind spot. For another $2,600, BMW will install "night vision with pedestrian detection," which uses a forward-facing infrared camera to spot people in the road.

Lasers, cameras, and other sensors are the most expensive part of autonomous driving systems. Some experimental self-driving cars are estimated to carry more than $200,000 worth of cameras and other gear. Those costs are also leading automakers toward a gradual approach that starts with sensor technologies and then extends capabilities to control driving tasks as well. In the high-end Mercedes-Benz CL, for instance, cameras not only tell a driver when he or she is leaving the lane but actually help the vehicle steer itself back. Several automakers already sell cars with so-called adaptive cruise control that automatically applies the brakes during highway driving if traffic slows. Next, BMW plans to extend that idea in its upcoming i3 series of electric cars, whose traffic-jam feature will let the car accelerate, decelerate, and steer by itself at speeds of up to 25 miles per hour—as long as the driver leaves a hand on the wheel.
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Monday, January 23, 2012

Modified Toyota 2000GT Solar EV

Engineerblogger
Jan 23, 2012


Modified Toyota 2000GT Solar EV


Toyota have developed a solar EV based on the 2000GT, its classic limited production grand tourer.

"There is a solar panel on the hood and a translucent solar panel on the rear window. Solar panels still have low charging efficiency, so they need about two weeks to charge fully from zero. But we've been particular about utilizing solar panels, to power this car without using any electricity from thermal plants, or emitting any CO2."

This car was built by the Toyota Automobile Association, which includes dealers, parts suppliers, and engineers as well as Toyota itself. It incorporates both traditional Japanese craftsmanship and cutting-edge technology.

This car was converted by members of the Crazy Car Project, which includes engineers from car dealers, parts suppliers, and car makers. It incorporates both traditional Japanese craftsmanship and cutting-edge technology.

"We created the interior together with a company called Hayashi Telempu, which supplied parts for the original 2000GT. The idea was to revive the original features using today's technology. By using artificial leather instead of real leather, we've given the interior an even smoother finish. For the wooden finish on the instrument panel, rather than the original brown, we've used Japanese black lacquer, with gold and silver accents. This was commissioned from artisans in Kaga, to create a traditional Japanese atmosphere. Another highlight is the seven-dial meter, a characteristic feature of the original 2000GT. We've kept the original arrangement unchanged, but now it shows EV readings, like the motor rate, battery charge, and battery temperature."

This concept behind this vehicle is a solar car that can carry two people at a top speed of 200 km/h. It has a 35 kWh battery from Panasonic, and uses the motor and inverter from the Lexus LS Hybrid.

"The sound of a gasoline engine in a race is exciting, and with a quiet EV, you can add the kind of sound you like. By making the pitch and frequency vary linearly when the accelerator is pressed, we've created a sound that simulates a race car very well."

"Imagine a parking lot in summer. The parking lot here in midsummer is full of cars, and they're not doing anything useful, just getting hot in the sun. If all cars had solar panels like this, they'd make a great mega-solar plant. If that could be achieved, automobiles, which are said to be unfriendly to the environment, could become good for it. They'd be useful even when they were parked. We've built this car in the hope that, one day, the world will be like that."




Source: DigInfo TV

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UKH2Mobility hydrogen project launched by Government

Engineerblogger
Jan 24, 2012



The government has announced plans to position the UK at the forefront of commercial hydrogen fuel-cell vehicle roll-out, launching the UKH2Mobility programme to develop an action plan ahead of a 2014/2015 deployment.

"The UK is proving itself to be a key early market for ultra-low emission vehicles with growing numbers of electric and plug-in hybrids appearing on our roads. The government is supporting this market by investing £400 million to support the development, demonstration and deployment of low and ultra-low emission vehicles." Explained business minister Mark Prisk at the launch event.

"Hydrogen fuel cell electric vehicles are increasingly being recognised as one of the viable options as we move to a lower carbon motoring future. They are highly efficient, can be fuelled in minutes, travel an equivalent range to a conventional combustion engine, and have zero tail-pipe emissions.

"The UK has a number of world-class companies that are developing exciting technologies in both the hydrogen energy and automotive value chains and it is therefore vitally important that we identify what is required to make these cars a realistic proposition for UK consumers.

"UKH2Mobility will bring together industry expertise to establish the UK as a serious global player in the manufacture and use of hydrogen fuel cell electric vehicles and the supporting infrastructure", Prisk added.

The project will seek to analyse in detail the specific UK case for the introduction of hydrogen fuel-cell vehicles as one of a number of solutions designed to reduce the carbon emissions of road transport, review the investments required to commercialise the technology including the requirement to build a refuelling infrastructure, and identify exactly what steps are required to put the UK at the head of the hydrogen fuel-cell vehicle manufacturing queue.

The project already has a wide selection of signatories, including specialists in the field of hydrogen and compressed gasses like Air Liquide Hydrogen Energy and the BOC Group to vehicle manufacturers including Daimler, Hyundai, Nissan, Toyota and Vauxhall. The first results from the programme are expected to be released by the end of this year; should the outlook appear positive, an action plan will be developed to provide a road map to a potential 2014/2014 roll-out of commercial hydrogen vehicles in the UK.

Source:  Expert Review

Sunday, January 22, 2012

REL, Inc. Teams with NYU-Poly to Create Lightweight, Ultra Durable Automotive Brake Rotor

Engineerblogger
Jan 24, 2012






Researchers at the Polytechnic Institute of New York University (NYU-Poly) and Michigan-based REL, Inc., are creating a next-generation aluminum composite brake rotor potentially weighing 60 percent less than today’s cast iron rotors with triple the life expectancy.

Due to expense, today’s composite brakes have been reserved for motorcycles, race cars and high-performance sports cars, but this new, fiber reinforced, metal matrix composite (MMC) brake rotor aims at the mass market. It will be easier to manufacture, and the fiber reinforcements will provide longer life span.

The researchers also estimate that their composite rotor will shave approximately 30 pounds from a mid-size sedan — a significant advantage in an industry facing fleet a fuel economy requirement of 54.5 miles per gallon by 2025.

REL, Inc., a developer of MMC transportation and aerospace components, received a $150,000 Phase I Small Business Innovation Research Grant from the National Science Foundation to develop the initial product design, material and manufacturing process. The company tapped the expertise of NYU-Poly Mechanical and Aerospace Engineering Associate Professor Nikhil Gupta and his Composites Materials and Mechanics Lab to develop the technology for automotive application. The collaboration will result in a prototype, first-of-its-kind rotor that may revolutionize a market valued at $10 billion annually.

Manufacturers have long sought to improve the durability and performance of automotive brakes, which are subject to tremendous temperature and pressure changes.

Gupta and REL are developing a one-piece brake rotor uniquely tailored to meet the extreme and variable temperature and loading conditions. Most of today's brake rotors are made of cast iron, which offers strength but at a cost of weight. Iron also doesn’t adapt well to the demands placed on different sections of the rotor. A brake rotor has three functional zones, each of which requires a material with distinct strain and thermal properties to function optimally. Temperature and pressure changes across the rotor surface are a major cause of wear, warp and brake failure.

The team will replace the traditional rotor material with a high-temperature aluminum alloy reinforced with functionally graded ceramic particles and fibers to create a lightweight but extremely durable material that can be customized to best serve each section of the rotor.

"These functionally graded materials allow us to create the optimal composition for each part of the rotor," Gupta explained. "The hybrid material allows us to provide reinforcement where additional strength is needed, increase high-temperature performance, and minimize stress at the interfaces between the zones. Together, this should boost rotor life significantly, reducing warranty and replacement costs, and the weight savings will improve the vehicle’s fuel efficiency.”

“As auto companies strive to meet increasingly high efficiency and low emissions targets, there's a tremendous business opportunity in creating novel lightweight components which reduce overall vehicle weight and increase vehicle performance”, said Adam Loukus, vice president of REL, Inc. "Professor Gupta is highly regarded in MMC research and analysis, and his expertise — backed by the resources of NYU-Poly — is an ideal complement to our goals for this exciting project.”

“This is a valuable opportunity for our students to gain real-world business experience,” Gupta added. "Working closely with the REL team, they will understand the demands of the automotive component development process."

In addition to the automotive market, the composite rotors may benefit military fleets, where up-armored vehicles operate at weights well above their design capacity. While the development of lightweight armor remains a long-term goal for the military, any weight savings on the vehicles themselves will immediately improve fleet efficiency, which can be critical to mission success where fuel delivery is difficult.

Gupta and the team at REL expect to complete a functional rotor prototype within 12 months.

Source: Polytechnic Institute of New York University (NYU-Poly)

Friday, January 20, 2012

Battery tech firm Red-T: Long-life battery system stores electrical energy in liquid form

Engineerblogger
Jan 20, 2011




A Dublin-based flow battery technology company called Red-T has just raised €900,000 in funding led by AIB Seed Capital Fund, Dublin BIC, Enterprise Ireland and its CEO.

Clontarf-headquartered Red-T has an R&D facility in Reading, England. The company has developed a unique battery technology.

RED-T's technology is a Vanadium-based flow battery which enables the cheap and efficient storage of electrical energy in liquid form. The technology has a variety of applications, including mobile masts, electric vehicles and renewable energy power stations. 

The potential to solve the two major obstacles to the widespread adoption of electric vehicles: excessive down time for recharging, and short-lived, high-cost batteries.

The patented Electric Vehicle Refuelling System (EVRS), an electric vehicle powered by an ENIFY vanadium redox battery can be rapidly recharged by removing the spent electrolyte and simultaneously replacing it with charged electrolyte. It’s just like refilling a diesel vehicle, except that a four-way sealed nozzle system is used to extract spent electrolyte and introduce fully charged electrolyte at the same time. There are some differences compared to diesel – the fuel is not flammable or hazardous to handle, it is not burned and does not give off harmful emissions, and it is continuously reusable once it has been recharged.

The lack of a refueling infrastructure, combined with the relatively low energy density of vanadium redox batteries (up to 35 Wh per litre, compared to 100 Wh per litre for lithium-ion batteries) makes them currently impractical as a means of powering long-distance electric vehicles. However, the EVRS system combined with the ENIFY batteries is ideal for electric vehicles such as city buses and delivery vehicles, which operate within a relatively small area, have short journey times, and return frequently to base.

In these situations, vehicles powered by vanadium redox batteries offer two significant advantages over vehicles powered by lithium-ion batteries:
  • They can be refuelled rapidly (in around five minutes, typically), making them more practical for “workhorse” situations where they are in use for up to 18 hours per day.
  • They have lower operating costs per kilometre. The fuel is untaxed and the batteries are infinitely reusable.
Of course, electric vehicles powered by a vanadium redox battery can also be charged directly from solar, wind, or off-peak grid energy.

This technology represents a paradigm shift in energy storage, and ultimately, the complete displacement of conventional fossil fuel power with renewable generation. It relies on the reaction of different valence forms of the same element, Vanadium, the system has unlimited life, with a long cycle life between component replacement (about 10,000 full cycles).

The initial markets for the system will be the remote power and communications market, which is valued at an estimated $6.8bn. Initial customers for the system are located worldwide, including in Brazil, Czech Republic, France, Germany, Ukraine, Russian federation, Italy, Spain, Saudi Arabia, Indonesia and The Philippines.

John Ward, CEO and co-founder of RED-T, said: "This investment in RED-T is a very significant milestone, we intend to recruit highly skilled engineers and sales professionals to enable us to further strengthen our core offering and build market share in key international markets."

Scott McGregor, RED-T director and CEO of CAMCO, the majority shareholder of RED-T, added: "This round of financing is a major step towards commercialising the technology to provide a low-cost solution to industry; we welcome our new shareholding partners.

“Low-cost fuel storage is a critical solution if the world is to fully utilise clean energy to address climate change."

Source: Silicon Republic

Thursday, January 19, 2012

KSPG's range extender concept gives gas to EVs

Engineerblogger
Jan 19, 2012





KSPG is 100-year-old automotive supplier that could, if it wanted to, produce a complete engine. That's not the company's plan, though, since it doesn't want to compete against its many customers. Therefore, the range extender concept engine that KSPG had on display at the Detroit Auto Show is something a bit new and different, both for the company and for the industry. It is a complete engine, but not one designed to power a car on its own. Instead, it is ready to be dropped into someone's EV to provide a bit of petroleum assurance to combat this range anxiety thing we keep hearing about.

Designed to fit into a space about the size of a spare wheel well, the two-cylinder, four-stroke,
137-pound engine is a product of both KSPG and FEV. It is meant to turn an EV into a serial hybird, as the engine is only there to generate electric power. That's why it doesn't matter where you put it, and the small size gives designers and engineers plenty of flexibility. KSPG Automotive's Gerd Kleinert told AutoblogGreen that this is a solution for our time.

"We are convinced that this is a kind of bridge technology from the current combustion engine to electric drive," he said. "The biggest point in electric cars is still the battery. If somone offers a battery that is the szie of a 50-liter [13.2-gallon] gas tank with the same energy content with the same weight that you can recharge it in three minutes, everyone would drive electric." But those vehicles aren't here quite yet. "That's the reason we think there is a need for this bridge technology becuase it guarantees you you will get home, even if you run out of electricity. You only need a small battery, which drives the cost down." Because, if you take some of the cost out of the pack and put it into the KSPG range extender, you can still use your car as an EV most days and retain the ability to go on a road trip when you want to.

KSPG began working on the range-extender project about a year ago, Kleinert said, adding that after the engine's introduction at the Frankfurt Motor Show in 2011 KSPG began talking to three potential customers about using this engine in their EVs. If that comes to pass, KSPG's production capacity could be 10,000 units a year, to start, Kleinert said. A full vehicle prototype is due in the summer of 2012 to try and generate more interest. Kleinert wouldn't say how much the engine would cost, just that it would be at "an acceptable price."

Source: Auto Green Blog