2008 Toyota Tundra Limited Dbl. Cab 4x4 Trd 5.7l. Clean In/out. Clean Carfax. on 2040-cars
Tempe, Arizona, United States
Vehicle Title:Clear
For Sale By:Dealer
Engine:5.7L 5663CC 345Cu. In. V8 GAS DOHC Naturally Aspirated
Body Type:Crew Cab Pickup
Fuel Type:GAS
Make: Toyota
Model: Tundra
Trim: Limited Crew Cab Pickup 4-Door
Disability Equipped: No
Doors: 4
Drive Type: 4WD
Cab Type: Crew Cab
Mileage: 63,559
Drivetrain: Four Wheel Drive
Sub Model: Limted
Exterior Color: Blue
Number of Cylinders: 8
Interior Color: Gray
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Auto blog
8 automakers, 15 utilities collaborate on open smart-charging for EVs
Thu, Jul 31 2014We're going to lead with General Motors here. GM is one of eight automakers working with 15 utilities and the Electric Power Research Institute (EPRI) at developing a "smart" plug-in vehicle charging system. Why did we start with GM? Because it's the first automaker whose press release we read that mentioned the other seven automakers. Points for sharing. For the record, the collaboration also includes BMW, Toyota, Mercedes-Benz, Honda, Chrysler, Mitsubishi and Ford. The utilities include DTE Energy, Duke Energy, Southern California Edison and Pacific Gas & Electric. The idea is to develop a so-called "demand charging" system in which an integrated system lets the plug-ins and utilities communicate with each other so that vehicle charging is cut back at peak hours, when energy is most expensive, and ramped up when the rates drop. Such entities say there's a sense of urgency to develop such a system because the number of plug-in vehicles on US roads totals more than 225,000 today and is climbing steadily. There's a lot of technology involved, obviously, but the goal is to have an open platform that's compatible with virtually any automaker's plug-in vehicle. No timeframe was disclosed for when such a system could go live but you can find a press release from EPRI below. EPRI, Utilities, Auto Manufacturers to Create an Open Grid Integration Platform for Plug-in Electric Vehicles PALO ALTO, Calif. (July 29, 2014) – The Electric Power Research Institute, 8 automakers and 15 utilities are working to develop and demonstrate an open platform that would integrate plug-in electric vehicles (PEV) with smart grid technologies enabling utilities to support PEV charging regardless of location. The platform will allow manufacturers to offer a customer-friendly interface through which PEV drivers can more easily participate in utility PEV programs, such as rates for off-peak or nighttime charging. The portal for the system would be a utility's communications system and an electric vehicle's telematics system. As the electric grid evolves with smarter functionality, electric vehicles can serve as a distributed energy resource to support grid reliability, stability and efficiency. With more than 225,000 plug-in vehicles on U.S. roads -- and their numbers growing -- they are likely to play a significant role in electricity demand side management.
New version of Toyota FT-1 Concept gets racy for Gran Turismo 6
Thu, 07 Aug 2014Gran Turismo 6 has been the preferred marketing springboard for quite a few brands and concept cars since its debut last winter. Specifically the GT Vision concept idea - allowing manufacturers a built-in place to offer up new, original, drivable content - has enticed the likes of Mercedes, Nissan, Volkswagen, Toyota and more to dream big on the digital stage before pulling the sheets back on real concept cars.
In fact, Toyota teamed its live reveal of the FT-1 Concept at the Detroit Auto Show with an in-game launch of the car, just this past January. Looking for a second bite at the GT6 apple, Toyota has just released a teaser video for a new, FT-1 Vision GT version of the same concept.
The company isn't giving us much to go on save for the 30-second video, saying only that the concept was penned by Toyota's Calty Design Research team in California, and that it will "soon be available for download." By the looks of it, the new FT-1 seems to be more of a racecar than the original, without obvious changes to the basic form. No word on whether or not there's a physical concept car in the offing at a yet-to-be-named auto show. Stay tuned.
How Toyota's 100-year textile history influenced FCV hydrogen fuel cell car
Thu, Sep 11 2014Turns out, Toyota had a surprising ace in the hole when it came to building the new fuel tanks for the FCV hydrogen fuel cell car, which is coming next year. Well before Toyota became the Toyota Motor Company, it was the Toyota Industries Corporation and it made textile looms. This is important because the main structure of the hydrogen tank is wound carbon fiber. When Toyota set out to increase the strength of the tanks to hold hydrogen stored at 10,000 psi (up from 5,000 in the previous tanks), it was able to draw on its 100-year-old history as it designed its car of the future. "A lot of that textile experience came back when we did the tank wrapping." – Justin Ward "We have a lot of experience with textiles," Justin Ward told AutoblogGreen at the 21st World Congress on Intelligent Transport Systems (ITS) in Detroit this week, "and a lot of that textile experience came back when we did the tank wrapping." On top of being able to hold the higher-pressure hydrogen, Toyota's first attempt to build its own hydrogen tank was six times faster than the industry standard, so it saved time and money as well as working better. The company will also be able to inspect its own tanks. Ward is the general manager of powertrain system control at the Toyota Technical Center and hydrogen vehicles are something he knows a lot about. The reason for the stronger, 10,000-psi tanks is because the 5,000-psi tanks only offered around 180-200 miles of range, even with four tanks in the early $129,000 FCHV Highlander hydrogen prototypes. The FCV only has two, but they will able to deliver the 300-mile range that customers told Toyota they wanted. Dropping the number of tanks not only obviously reduced the cost for the tanks themselves but also the number of valves and hoses and other components you need. Despite the benefits of higher compression, going much higher doesn't make sense. 10,000 psi is the "natural progression," Ward said, because "you start to bump up against compression inefficiencies." Think of an air compressor. When hydrogen is produced at a wastewater treatment plant or a reforming site, Ward said, is it at around ambient pressure (14 psi). That has to be raised, using compressors, all the way to 10,000 psi. "That takes energy," Ward said, "and every doubling of pressure adds another doubling of energy needed, so it starts to add up pretty fast if you go too high." Component specifications are also fine at 10,00 psi, but more difficult at higher levels.
