Monday, November 7, 2016

Toyota may reverse its strategy and offer more electric vehicles

In what would be a dramatic reversal, Toyota may be considering building long-range electric vehicles instead of just plug-in hybrids and fuel-cell vehicles, a Japanese newspaper says.

The automaker had previously said it would focus on other alternative-fuel vehicles because of the lengthy charging time for electric vehicles and the high cost of their batteries, reserving electric vehicles for short-distance commuting only.

Most of Toyota's alternative-fuel vehicles in the U.S. are hybrids or plug-in hybrids. It also sells the Toyota Mirai fuel-cell vehicle in small numbers.

But Nikkei, without citing sources, said Toyota would set up a team early next year dedicated to developing electric cars that can travel more than 186 miles on a single charge. Electric vehicles generally must have a range of at least 200 miles to get consumers to seriously consider them.

General Motors' new electric Bolt sedan, for example, will be able to go more than 200 miles on a single charge.

Toyota neither confirmed nor denied the report, saying only that it does not comment on product-development plans. The Japanese newspaper said Toyota would begin selling its first long-range electric vehicles in Japan and some U.S. markets by 2020.

Tough emissions regulations in California and China's push to increase electric car usage may be driving Toyota's reported change of heart, observers said.

"Toyota has been a major holdout on EVs, but it appears that it now realizes that without them, it may be difficult to satisfy tightening regulations," Takeshi Miyao, managing director of consulting company Carnorama, told Automotive News.


Source: Toyota may reverse its strategy and offer more electric vehicles

Sunday, November 6, 2016

What Tesla’s new Gigafactory means for electric vehicles

An overall view of the new Tesla Gigafactory is seen during a media tour Tuesday, July 26, 2016, in Sparks, Nev. © Associated Press An overall view of the new Tesla Gigafactory is seen during a media tour Tuesday, July 26, 2016, in Sparks, Nev. Tesla's new Gigafactory opened at the end of July in Nevada, with much excitement from both the media and the general public. Only 14 percent of the massive structure has been built, with the rest of the $5 billion project to be concluded by 2020. According to Tesla, battery cell production will start in 2017; by 2018, the Gigafactory should be cranking out cars to the tune of 500,000 Model 3s per year. A big part of Tesla's need to build the Gigafactory lies in the reduced expenses for lithium-ion battery production it provides.

The Gigafactory is a marvel of modern production technology, "a machine that builds machines," as Tesla CEO Elon Musk puts it. In addition to being cool, it offers unprecedented economies of scale for lithium-ion battery production, lowering the price from $190 per kWh in April 2016 to an estimated $130 per kWh once complete. The huge scale of the production, coupled with reduction of waste and a vastly reduced supply chain, provide significant savings and ultimately a 30 percent reduction in battery production costs.

The Gigafactory is a big statement from Musk, and a clear sign that Tesla believes the world is ready for full electrics. But does the world agree? Are lithium-ion batteries the way to go? The total number of cars sold in 2015 was around 72.37 million. Electric vehicles accounted for around 0.8 percent, or 540,000, of that number, a significant step up from about 376,000 EVs sold in 2014, but still less than 1 percent of cars sold worldwide.

As far as Tesla goes, the company sold 50,580 vehicles in 2015, 0.07 percent of all cars sold globally, less than 10 percent of all electric vehicle sales. So, Tesla is winning the publicity battle, but so far it's the big, traditional car manufacturers such as Renault-Nissan that are winning the zero emissions war. Nissan-Renault, the manufacturer of Nissan LEAF, the most-sold EV in the world, and a slew of other electric vehicles, sold 100,000 EVs between August 2015 and August 2016.

So for now, Tesla has gone all-in for lithium-ion batteries. What other options are there? Brands such as Ford, BMW, Mercedes-Benz, Audi, Toyota — essentially all the big players on the market — are working mostly on hybrids in addition to their traditional lines of cars. To understand the benefits and downsides of each type of car, let's first take a closer look at the electric and hybrid vehicles on the market today.

From Prius to Model X

Electric and hybrid cars can be divided into four main groups: Battery Electric Vehicles (BEVs), Plug-in Hybrid Electric Vehicles (PHEVs), Hybrid Electric Vehicles (HEVs) and Fuel-Cell Electric Vehicles. Each have their advantages and disadvantages, but what's certain is that each type is a more environmentally friendly choice than a conventional, fossil fuel-powered combustion engine vehicle.

Battery Electric Vehicle (BEVs)

Battery electric cars rely only on the battery pack to power the engine, which means the range is generally fairly limited. The one exception currently is Tesla; their Model S has reached a range of around 270 miles or 430 kilometers — although the numbers Tesla provides must be taken with a grain of salt, because the range depends largely on the size of battery pack you choose, how fast you drive, how cold or warm the weather is, whether you are using air conditioning or not, etc.

As mentioned, no other car manufacturers build only BEVs, but many companies are offering them in addition to their plug-in hybrids and traditional gas- or diesel-powered cars. In addition to Tesla, the best-known examples are the i3 from BMW, the Chevrolet Spark EV, the Mitsubishi i-MiEV and the Nissan LEAF.

The Gigafactory is a big statement from Musk, and a clear sign that Tesla believes the world is ready for full electrics.

The biggest problem BEVs have is the lack of charging stations, and the time it takes to fully charge the battery pack. Tesla is working on building their Supercharger network to solve the issue, but other car brands are currently not able to use the Supercharger network. Of course, the lack of range only becomes an issue when you need to travel longer distances than a typical daily commute to work and back.

Another hurdle that BEVs need to cross is the high price of purchase. Once again, this is something Tesla is looking to remedy, and a large number of potential buyers are eagerly awaiting the launch of Model 3. However, the Model 3, Tesla's lowest-priced EV starting at $35 000, is still not an inexpensive car by any means.

Plug-in Hybrid Electric Vehicles (PHEVs)

Plug-in hybrids have a conventional gas- or diesel-powered engine in addition to a battery pack. Hybrids are popular because they combine long range and low fuel consumption. PHEVs can be recharged from an outlet and the battery pack can be used for short distances. Once the power runs out, they can be recharged, or the driver can rely on the engine to keep driving. PHEVs are, of course, not as environmentally friendly as full EVs or fuel-cell EVs, but pollute significantly less than traditional cars. BMW i8, Chevy Volt, Toyota Prius Plug-in and Mitsubishi Outlander PHEV are some well-known examples of plug-in hybrid electric vehicles on the market today.

Hybrid Electric Vehicles (HEVs)

Conventional hybrids with gas-powered engines and electric motors are actually not considered "electric vehicles" and cannot be recharged from the power grid. They are powered entirely by a gasoline engine and regenerative braking. The best-known examples of HEVs are Toyota Prius, the first truly successful hybrid, Honda Civic Hybrid, Toyota Camry Hybrid and Ford Escape Hybrid.

Fuel-Cell Electric Vehicles (FCEVs)

The last option for the green-thinking consumer is the fuel-cell powered FCEV class. Fuel-Cell Electric Vehicles usually operate by converting hydrogen gas into electricity to power an electric motor. The conversion process of hydrogen gas to electricity produces only water and heat, which means the FCEV class is the only class of EVs together with BEVs that can be classified as zero-emissions vehicles.

There's one major difference between FCEV and BEV vehicles, though, and that is the Achilles' heel of BEVs: lack of range. FCEVs rival modern gas engines in range and fueling is just as easy, with about five minutes needed to fill the fuel cell.

So why are there not more FCEVs on the road today? The technology is relative new, which means the biggest problem is lack of fueling infrastructure and, of course, as vehicle production numbers are currently low, the price per unit is high. Of the few FCEVs currently on the market, the Hyundai Tucson FCEV is only available for lease, and prices for the most-sold FCEV to date, Toyota Mirai, start at around $58,000. There are also many problems associated with the production and storage of hydrogen, which we'll dig into a bit later.

What's holding back electric vehicles?

To give you an idea of the timescales in which the car industry works, consider this: Toyota started development on its FCEV technology in 1992 and started selling the Toyota Mirai in 2015. That's 23 years. It's very common for car models to reach an age of 7-8 years before getting a facelift, which might just mean minor changes to the design of the car and possibly some upgrades under the hood.

Now let's compare that to Tesla. Founded in 2003, Tesla brought its first car, the Roadster, on the market in 2008. Musk has later admitted that the Roadster "was completely unsafe," it "broke down all the time," and it "didn't really work." Nonetheless, to bring a new car model to the market five years after the company was founded is impressive. Eight years removed from the launch of the Roadster, Tesla has the Model S and the Model X, with Model 3 a few years away.

In the time most car manufacturers make mostly cosmetic changes to existing models that are based on old, proven technology, Tesla brought to market completely new car models with highly complicated, often unproven technology. Without Tesla lighting a fire under the backsides of the more traditional car companies, it's very likely that electric cars would experience a slower introduction to the market.

Fossil fuels possess energy density capabilities far beyond what batteries can achieve.

But the Tesla engineers can't solve all the problems of the electric car industry by themselves.

Let's turn our attention to energy storage, an undervalued industry. There is a lot of talk about renewable energy production, but energy storage is sort of an afterthought to many. If you have ever wondered why renewable energy is not more prevalent despite us possessing the technology to power the world with it, the reason is energy storage.

Wind and sunlight are inherently unstable sources of energy, because the sun doesn't shine 24 hours a day, nor does the wind howl away at an endless, steady pace. Energy storage devices are needed to balance the times of highs and lows. The small, incremental improvements in battery technology over the last 267 years — since Benjamin Franklin first coined the term "battery" to describe a set of linked capacitors he was using — have not been enough to keep up with the ever-growing global need for energy storage.

The same logic that applies to our homes, factories and shopping centers applies to our cars. Fossil fuels possess energy density capabilities far beyond what batteries can achieve, which means that despite their well-documented drawbacks concerning the environment, gasoline-powered cars will not disappear until energy storage catches up.

For a typical consumer, the jump from a combustion engine to a full electric, or even a hybrid, is a big leap. Even with constant upgrades and advancements in battery technology, lithium-ion batteries are heavy and suffer from capacity deterioration, leading to EV owners having to change the battery packs in their Teslas, or other electric vehicles, within 5-10 years. By Tesla's own admission, the battery pack capacity starts deteriorating latest at 4-5 years of use, and by the 8th year, the battery pack capacity is expected to have decreased by 30 percent. With range being the top concern for most buyers, that's cause for worry, especially with the price of a battery pack replacement hovering currently at a minimum of $12,000, according to Tesla, although the talk on the Tesla Motors Club forums circles at much higher numbers: from $25,000-$45,000.

The prices for EVs will decrease as the technologies involved become mainstream and economies of scale come into play with higher production numbers, so the problem we are left with is range. Extending the range requires one of two things: adding more batteries, which makes the car much heavier, or a rapid acceleration in the energy storage capability of lithium-ion batteries.

Adding more batteries is hardly an ideal solution, but can we expect big increases in lithium-ion battery capacity? Current lithium-ion batteries hold more than twice the amount of energy compared to the first Sony-manufactured lithium-ion batteries introduced to the market in 1991. If a doubled capacity in 25 years of constant research is the best the smartest people on the planet can achieve, it's not realistic to expect huge increases. In fact, the consensus among the research community is that at most a 30 percent increase in energy by weight is possible for lithium-ion batteries. What that means is that lithium-ion batteries will never be the solution electric vehicles need to dethrone the internal combustion engine.

Without Tesla lighting a fire under the backsides of the more traditional car companies, it's very likely that electric cars would experience a slower introduction to the market.

Knowing that, why in the world would Tesla put all its figurative eggs in the lithium-ion basket? Because lithium-ion batteries are currently the most cost-effective solution to furthering Elon Musk's Master Plan, Part Deux, the key word being "currently."

Therefore, Tesla's gung-ho approach to lithium-ion batteries should not be taken as a statement on the future of electric vehicle energy storage. Tesla is an early adopter, and even more often the inventor of new technologies, and will surely adopt any advantage in energy storage they deem viable enough to improve on the current designs, regardless of the investment made into lithium-ion batteries. Musk himself has predicted that ultracapacitors, not batteries, will be the breakthrough for electric vehicles.

What's preventing Tesla from using ultracapacitors? Ultracapacitors, or supercapacitors as they are also known, have several advantages over batteries, the incumbent energy storage technology. Ultracapacitors charge and discharge in seconds, have a lifetime up to 500 times that of lithium-ion batteries and are highly reliable. Sounds perfect, right? Well, not quite. Energy density, the one crack in the ultracapacitor armor, is keeping them off car manufacturers' short list of potential replacements for lithium-ion batteries. They're perfect for powering start-stop and Kinetic Energy Recovery Systems, but alone they're not the answer.

The future of electric vehicles

Sooner or later, the reign of lithium-ion batteries will come to an end, because the inherent limitations of lithium-ion batteries mean that better alternatives must emerge. If we circle back to the four types of electric vehicles discussed earlier, only one does not rely on battery technology: the Fuel-Cell Electric Vehicle.

Hydrogen, the fuel used in FCEVs, is an extremely plentiful element, and when pure hydrogen is derived from renewable energy sources, the entire chain of energy production and consumption is free from carbon emissions. There is a group of devoted FCEV believers within the automotive industry; Toyota is perhaps the most enthusiastic among them. Toyota and Honda have been feverishly working on their FCEV models, with the Toyota Mirai and the Honda Clarity both already on the market, to get a head start on other manufacturers, but the competition is getting its act together. Lexus and Audi both debuted their hydrogen concept cars, the LF-LC and the h-tron quattro respectively, at the Detroit Auto Show in January.

At the outset, hydrogen looks like a promising alternative to fuel the future of transportation, but what does Elon Musk think? When asked to comment on FCEVs while visiting the Automotive World News Congress in Detroit in 2015, Musk was, true to his nature, quite direct in his appraisal, calling FCEVs "incredibly dumb." Musk is not alone in his scathing criticism. Robert Zubrin, the author of Energy Victory, was quoted in the Economist as saying hydrogen is "just about the worst possible vehicle fuel."

The disdain is easier to understand if we look at the two biggest problems FCEVs face: the production and delivery of large quantities of hydrogen. It's currently very costly to produce hydrogen, especially carbon-free, and transferring it is equally expensive. Not to mention that the electricity needed to produce hydrogen could be directly used to power electric vehicles already on the market. It's looking increasingly likely that FCEVs, despite not relying on batteries, are not the answer.

Where are we headed, then? We can already produce the utopian dream of an electric car enthusiast: a zero-emissions electric vehicle that uses a combination of ultracapacitors and batteries. Batteries provide the range, ultracaps the power and regenerative energy — it's a perfect marriage of slow and fast energy storage. Is it perfect as a car? Not even close. It's pricey, and either extremely heavy with longish range, or just heavier than an average car, but with a very limited range. In some years, lithium-ion batteries will hit a wall, and we'll need an alternative energy storage technology. Whether it's ultracapacitors, hydrogen, methanol, a combination of existing technologies or something completely different, it remains to be seen.

The sad thing is that Tesla is currently the only car manufacturer with the courage (take note Apple) to push the boundaries and make things happen, while other manufacturers seem to be content at developing hybrids and conducting small-scale tests hoping for a miracle. And what makes that even more baffling is that even though Tesla is the one manufacturer making huge investments on the Gigafactory and lithium-ion battery production, if and when the times comes for another technology to overtake batteries, Elon Musk will be there, ready to pounce. Until then, we're stuck with Tesla. I can live with that — for now.


Source: What Tesla's new Gigafactory means for electric vehicles

Saturday, November 5, 2016

Motor Trend: The Chevy Bolt makes most other electric cars 'utterly irrelevant'

Chevy BoltChevrolet

While we wait for Tesla's mass-market Model 3 to arrive sometime in late 2017, we can start to mull over the Chevy Bolt — a 238-mile-range electric vehicle, stickering for $29,995 after credits — that's heading to dealerships in California and Oregon before 2016 is in the record books.

Motor Trend took things a step further recently and conducted a head-to-head comparison between the Model 3 and the Tesla Model S 60, at $66,000 the cheapest Tesla one can currently get.

It wasn't a fair comparison, and Motor Trend admitted as much, but the idea was to see if Chevy's new EV could match up against the premier 200-plus-mile electric car in the market.

And match up it did, so much so that Motor Trend concluded that the Model S isn't necessarily worth $30,000 more (the well-optioned Bolt they tested came it at just over $40,000). That doesn't mean you shouldn't buy a Tesla — it's just that the Bolt offers a very competitive and cheaper, non-luxury alternative.

More importantly, MT decided the Bolt is so good that it beats every other short-range EV currently in the market. It's a game-changer.

"More than any EV that's come before it, the Bolt makes emissions-free, environmentally friendly transportation a realistic proposition for millions of Americans," MT's Christian Seabaugh wrote.

"It has made the current crop of pricey, short-range electric cars from BMW, Nissan, and others utterly irrelevant."

You can read the entire comparo here. It's well worth it.

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Source: Motor Trend: The Chevy Bolt makes most other electric cars 'utterly irrelevant'

Friday, November 4, 2016

Firefly Electric Car Designed For Driving Lessons For 5-10 Year Olds

Young Driver Motor Cars Limited, a division of Young Driver, has introduced the Firefly – called the world's first electric car specially developed for five to 10 year olds.

According to Young Driver, prior to the Firefly there were no suitable EVs for driving lessons for the very young, beside toys typically designed for the under five crowd – like the Radio Flyer Tesla Model S.

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

Necessity is the mother of invention, and the company recruited a team of UK automotive experts that designed, engineered and manufactured the Firefly.

Driving lessons in a Firefly are available in UK from £19.95 (5 minute briefing period + 15 minutes of driving).

The top speed of the vehicle is limited to 10 mph, but safety features like "Junior mode" enables a lowering of the limit to 5 mph. Also of interest, the car's safety systems detect obstacles in time to bring the car to a halt on its own.

Additionally, a remote control switch enables adults to stop the car from up to 120 meters away, in case of an emergency.

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

"The first two-seater Firefly cars were revealed in pre-production prototype form in April at the Gadget Show Live, when over 1,000 youngsters put the four prototypes through their paces. Since then, the company has continued to develop, test and refine Firefly, working with leading designers and tier one UK automotive suppliers to create the finished product which handles and drives like a full-sized car.

The Firefly technical spec includes hydraulic disc brakes, rack and pinion steering, independent suspension, an electronic tablet based dashboard and an eye catching body styled by veteran car designer, Chris Johnson. Chris has over 30 years' experience in automotive design working for manufacturers including Rover, Jaguar, Ford and Volvo.

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

Firefly is powered by a state of the art electric drive train featuring twin electric motors enabling a top speed restricted to 10mph. The car can, however, be set to a Junior or Experienced mode. An innovative (patent pending) and optional safety system uses sensors to detect obstacles in time to bring the car to a halt when it is operating in the Junior mode, which also limits speed to 5mph. Working in forward or reverse modes, this is supplemented by a remote control switch which enables adults to stop the car from up to 120 metres away in case of an emergency. The automatic sensors and 5mph speed limit are deactivated in the Experienced mode, but the remote control is still operational.

The driver's seat can be adjusted, allowing most youngsters aged from five to 10 to reach the pedals. An adult of up to 6ft can also drive, or be a passenger within the vehicle.

Firefly electric car designed for 5-10 year olds

Firefly electric car designed for 5-10 year olds

Firefly's features include:

  • Independent suspension
  • Top speed of 10 mph
  • Adjustable driver's seat
  • Fixed passenger seat
  • Hydraulic disc brakes, accelerator and forward/reverse control
  • Indicators and side repeaters
  • LED headlights and tail lights
  • Twin electric motors with up to 9-hour continual operation capability
  • Twin 12v batteries with 240v charger
  • Tablet based instruments including speedometer, clock and power reserve indicator
  • Lockable Junior and Experienced mode options with Junior mode restricted to speed of 5mph
  • Unique and patented safety system that brings the car to a halt before collision (in reverse or forward drive) whilst in Junior mode
  • The ability to stop the car by remote control from 120 metres
  • CE certification in progress
  • Range of options and accessories including bespoke paint colours and combinations, individual badging and instruments, upholstered leather seats and steering wheel, wireless tyre pressure indicators and in-car audio
  • GRP or carbon fibre body
  • The creation of Firefly means that Young Driver can now offer lessons specifically developed for this younger age group. Lessons in the Firefly will be available through Young Driver at selected venues in the UK in Autumn. The price of a 20 minute lesson (inclusive of a 5 minute briefing period) will be £19.95.

    Whilst the product was initially developed for use by Young Driver, it will also be available for purchase worldwide by members of the general public from 2017 with a price tag in the region of £5,750 + VAT."

    Firefly electric car designed for 5-10 year olds

    Firefly electric car designed for 5-10 year olds

    Kim Stanton, who heads up Young Driver, said:

    "We are delighted to be officially launching Young Driver Motor Car's first electric car aimed at five to 10 year olds – Firefly. It has taken over a year to come together and involved the hard work of many talented and experienced people from the UK's vibrant and successful automotive industry. We were surprised that nothing existed for this age range other than plastic toys, and it felt like we had to take up the challenge and run with it! Firefly is something very special, it's a real car in its own right, designed, engineered and manufactured in the Midlands, Great Britain – home of the car industry. We know that youngsters will enjoy driving it and that through this they will learn about road safety, finding out about the basics of driving and gaining a better understanding of how it feels to be behind the wheel. That can only be of benefit when it comes to them being pedestrians, cyclists and future motorists out there on the roads."


    Source: Firefly Electric Car Designed For Driving Lessons For 5-10 Year Olds

    Thursday, November 3, 2016

    Uber plans autonomous electric flying car

    Uber plans autonomous electric flying car © Haymarket Uber plans autonomous electric flying car

    Uber is planning an electric flying car in the next decade, which would provide a taxi service in the sky, alleviating traffic, reducing emissions and cutting commute times.

    Chief product officer Jeff Holden posted a white paper on the car-sharing firm's website talking about the flying car, which it all calls a VTOL aircraft, - abbreviation of Vertical Take-off and Landing.

    Uber described the plans as enabling "rapid reliable transport between suburbs and cities, and ultimately, within cities". Daily long-distance commutes in heavily congested urban areas not served by existing infrastructure would likely to be the first to use the aircraft.

    It said more than a dozen companies are working on the project, with "many different design approaches".

    Twice as safe as a car

    The electric aircraft, which would be quieter, cheaper and less polluting than its nearest equivalent, the helicopter, would ultimately use autonomous technology, according to Uber, making it much safer by "significantly reducing operator error".

    It envisages VTOL flying cars can be twice as safe as driving a car through both autonomy and distributed electric propulsion (DEP). The use of DEP allows for fixed-wing VTOLs, which wouldn't need large helicopter rotors and provide lift with greater efficiency than rotors.

    However, Uber commented: "No vehicle manufacturer to date has yet demonstrated a commercially viable aircraft featuring DEP, so there is real risk here."

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    Cheaper than running a car

    Uber believes that in the long term, VTOL flying cars will be more affordable than running a car. Acknowledging that today's aircraft and helicopters cost about 20 times more than a car, due to low-volume manufacturing, it said: "If VTOLs can serve the on-demand urban transit case well — quiet, fast, clean, efficient, and safe — there is a path to high production volume manufacturing (at least thousands of a specific model type built per year) which will enable VTOLs to achieve a dramatically lower per-vehicle cost. The economics of manufacturing VTOLs will become more akin to automobiles than aircraft."

    It added that early VTOL vehicles are likely to be very expensive, but because the ridesharing model quickly reduces vehicle cost, "the high cost should not end up being prohibitive to getting started".

    "Once the ridesharing service commences, a positive feedback loop should ensure that ultimately reduces costs and thus prices for all users, i.e. as the total number of users increases, the utilisation of the aircraft increases," the company said.

    Uber also identified a number of challenges which must be addressed to make VTOL vehicles viable. These included the certification process for new aircraft concepts, battery technology for electric transport and air traffic control.

    The greatest operational barrier for deploying a VTOL fleet is a lack of sufficient locations for landing pads, said Uber.

    The firm described the vision as "ambitious" but believes "it is achievable in the coming decade if all the key actors in the VTOL ecosystem — regulators, vehicle designers, communities, cities, and network operators — collaborate effectively".


    Source: Uber plans autonomous electric flying car

    Wednesday, November 2, 2016

    Electric-car maker Tesla plans to sell solar roof tiles, too

    Elon Musk wants to make solar-roof panels as sexy as his electric luxury cars.

    "This is sort of the integrated future".

    Elon Musk, CEO of Tesla and chairman of SolarCity, introduced highly anticipated solar roof tiles and the newest Powerwall energy storage product during an event at Universal Studios in Los Angeles on Friday.

    For the event, Tesla stripped a series of houses on the fictional Wisteria Lane of their old roofing material and replaced it with one of four visually similar new styles of solar tile - Textured Glass, Slate Glass, Tuscan Glass or Smooth Glass.

    "When Tesla and SolarCity embarked to design and engineer the solar roof together, the goal was to create the most attractive and efficient roof ever - one that would make homes look better while reducing the cost of electricity", Tesla said in a statement. "An electric vehicle, a Powerwall and a solar roof". "The key is it needs to be handsome, affordable and seamlessly integrated".

    Musk's presentation was short on details about the efficiency of the solar roofs, their warranty, cost or when they will be available. This time around, the home battery is slightly more square and rectangular, and should fit into your existing home or garage decor slightly easier. It's also using the announcement of the new product as an explanation for why its acquiring Solar City.

    That's because each roof tile is a smaller solar panel. Musk said the Powerpack 2 similarly doubles the power of the previous generation, offering 210 kWh/50 kW, and he added, "This can scale to unlimited size". He then showcased several houses with different roofing styles and said they were all solar, with solar panels embedded into glass shingles.

    SolarCity, which has $6.34 billion in liabilities, including debt, has expanded dramatically in the last five years, but it relies heavily on borrowing money to finance its no-money-down residential solar installations.

    Tesla is making its case to shareholders that a combination with solar panel maker SolarCity Corp. would be financially as well as environmentally beneficial.

    Some remained critical of the merger between Tesla and SolarCity - particularly given the latter's high debt levels and Musk's involvement in both companies - but Tesla's surprising third quarter profit could allay some shareholder fears about the deal, analysts said last week.


    Source: Electric-car maker Tesla plans to sell solar roof tiles, too

    Tuesday, November 1, 2016

    Fisker’s Electric Car Will Double the Range of Tesla's Car

    At MILCOM, global security professionals face command, control, communications, computers and intelligence (C4I) challenges head on. They look at them from every angle and discuss them from end to end–research and development through future needs. The conference allows industry the opportunity to hear and understand the requirements, pace of change and state of play in a variety of C4I markets serving the military, federal agencies and multinational entities.


    Source: Fisker's Electric Car Will Double the Range of Tesla's Car