2014 Ford Focus Se Front Wheel Drive 2l I4 16v Automatic Certified 23031 Miles on 2040-cars
Katy, Texas, United States
Engine:2L 4 Cylinder Engine
Body Type:Sedan
Vehicle Title:Clear
For Sale By:Dealer
Certified pre-owned
Year: 2014
Interior Color: Gray
Make: Ford
Number of Cylinders: 4
Model: Focus
Drive Type: Front Wheel Drive
Warranty: Vehicle has an existing warranty
Mileage: 23,031
Sub Model: SE Certified
Exterior Color: Gray
Number of Doors: 4 Doors
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Auto Services in Texas
Z`s Auto & Muffler No 5 ★★★★★
Wright Touch Mobile Oil & Lube ★★★★★
Worwind Automotive Repair ★★★★★
V T Auto Repair ★★★★★
Tyler Ford ★★★★★
Triple A Autosale ★★★★★
Auto blog
Ford issues six recalls covering 101,000 vehicles for multiple issues
Tue, 08 Jul 2014Ford is announcing six separate recalls for a variety of issues affecting a dozen models and a total of 100,610 vehicles in North America. However, according to Ford spokesperson Kelli Felker, "None of them have caused accidents or injuries." Half of them cover fewer than 1,000 cars.
The largest recall covers 92,022 North American examples (about 83,250 in the US) of some models of the Ford Taurus, Lincoln MKS, Ford Interceptor, Flex and Lincoln MKT from the 2013 and 2014 model years; the 2012-2014 Edge and the 2014 Lincoln MKX. All of them have a potential issue with the halfshaft on the right side that might not be fully seated and could move outward over time. If it shifts too far, the models may no longer be able to drive, and the condition could also allow the vehicles to roll away, even when in Park. Dealers will inspect the shaft to make sure it's seated and will replace the part if necessary.
The next-largest recall covers 5,264 North American examples (4,867 in the US) of the Ford F59 Commercial Stripped Chassis from the 2011-2014 model years. It's possible that an electrical junction box can corrode in areas with salty roads and short circuit. The problem could potentially cause a fire. Dealers will replace the box with an improved design.
The next-generation wearable will be your car
Fri, Jan 8 2016This year's CES has had a heavy emphasis on the class of device known as the "wearable" – think about the Apple Watch, or Fitbit, if that's helpful. These devices usually piggyback off of a smartphone's hardware or some other data connection and utilize various onboard sensors and feedback devices to interact with the wearer. In the case of the Fitbit, it's health tracking through sensors that monitor your pulse and movement; for the Apple Watch and similar devices, it's all that and some more. Manufacturers seem to be developing a consensus that vehicles should be taking on some of a wearable's functionality. As evidenced by Volvo's newly announced tie-up with the Microsoft Band 2 fitness tracking wearable, car manufacturers are starting to explore how wearable devices will help drivers. The On Call app brings voice commands, spoken into the Band 2, into the mix. It'll allow you to pass an address from your smartphone's agenda right to your Volvo's nav system, or to preheat your car. Eventually, Volvo would like your car to learn things about your routines, and communicate back to you – or even, improvise to help you wake up earlier to avoid that traffic that might make you late. Do you need to buy a device, like the $249 Band 2, and always wear it to have these sorts of interactions with your car? Despite the emphasis on wearables, CES 2016 has also given us a glimmer of a vehicle future that cuts out the wearable middleman entirely. Take Audi's new Fit Driver project. The goal is to reduce driver stress levels, prevent driver fatigue, and provide a relaxing interior environment by adjusting cabin elements like seat massage, climate control, and even the interior lighting. While it focuses on a wearable device to monitor heart rate and skin temperature, the Audi itself will use on-board sensors to examine driving style and breathing rate as well as external conditions – the weather, traffic, that sort of thing. Could the seats measure skin temperature? Could the seatbelt measure heart rate? Seems like Audi might not need the wearable at all – the car's already doing most of the work. Whether there's a device on a driver's wrist or not, manufacturers seem to be developing a consensus that vehicles should be taking on some of a wearable's functionality.
Aluminum lightweighting does, in fact, save fuel
Mon, Apr 14 2014When the best-selling US truck sheds the equivalent weight of three football fullbacks by shifting to aluminum, folks start paying attention. Oak Ridge National Laboratory took a closer look at whether the reduced fuel consumption from a lighter aluminum body makes up for the fact that producing aluminum is far more energy intensive than steel. And the results of the study are pretty encouraging. In a nutshell, the energy needed to produce a vehicle's raw materials accounts for about 10 percent of a typical vehicle's carbon footprint during its total lifecycle, and that number is up from six percent because of advancements in fuel economy (fuel use is down to about 68 percent of total emissions from about 75 percent). Still, even with that higher material-extraction share, the fuel-efficiency gains from aluminum compared to steel will offset the additional vehicle-extraction energy in just 12,000 miles of driving, according to the study. That means that, from an environmental standpoint, aluminum vehicles are playing with the house's money after just one year on the road. Aluminum-sheet construction got topical real quickly earlier this year when Ford said the 2015 F-150 pickup truck would go to a 93-percent aluminum body construction. In addition to aluminum being less corrosive than steel, that change caused the F-150 to shed 700 pounds from its curb weight. And it looks like the Explorer and Expedition SUVs may go on an aluminum diet next. Take a look at SAE International's synopsis of the Oak Ridge Lab's study below. Life Cycle Energy and Environmental Assessment of Aluminum-Intensive Vehicle Design Advanced lightweight materials are increasingly being incorporated into new vehicle designs by automakers to enhance performance and assist in complying with increasing requirements of corporate average fuel economy standards. To assess the primary energy and carbon dioxide equivalent (CO2e) implications of vehicle designs utilizing these materials, this study examines the potential life cycle impacts of two lightweight material alternative vehicle designs, i.e., steel and aluminum of a typical passenger vehicle operated today in North America. LCA for three common alternative lightweight vehicle designs are evaluated: current production ("Baseline"), an advanced high strength steel and aluminum design ("LWSV"), and an aluminum-intensive design (AIV).
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