2017 BMW i3 goes 180 km with new 33-kWh battery

Today BMW announced that BMW i will offer a new model range of its compact electric car, the BMW i3 and from the 2017 model year will be offering a new version with more than 50% increased battery capacity. The 2017 BMW i3 (94 Ah) has a capacity of 33 kilowatt hours (kWh) thanks to the higher energy density of the lithium ion cells.

The BMW i team worked to ensure that the battery dimensions remain unchanged while still offering a significant range increase. Even in everyday conditions, the new Battery Electric BMW i3, in varying weather conditions and with the air conditioning or heating turned on, a range of up to 114 miles combined1 (hwy/city) is possible as shown by independent BMW testing cycles. The driving performance figures of the 170 hp AC synchronous electric motor remain virtually unchanged. The motor propels the BMW i3 from 0 to 60 mph in just over 7 seconds.

This makes the BMW i3 both the sportiest and most efficient electric vehicle in its segment with an expected EPA electricity consumption of 27 kWh/100mi. In addition to the Battery Electric BMW i3, the Range Extender model will also feature the 94 Ah battery. When equipped with the Range Extender, if the driver requires additional range, the 2-cylinder gasoline engine is switched on once the battery is depleted to 6.5% state of charge and keeps the charge level of the battery constant while driving and provides an additional range thanks to a 25% larger fuel tank (2.4 gallons). With the introduction of the BMW i3 (94 Ah), BMW i now also offers a new BMW Home Charger Connect, a residential charging station designed for comfortable and fast home charging featuring additional connected functions. Pricing for the 2017 BMW i3 (94 Ah) will be released closer to market launch.

Higher storage density of the battery cells.

The BMW i3 (94 Ah) sets a new benchmark in its segment with 94 ampere hours (Ah) cell capacity, 33 kWh total battery energy, and an electric range of approximately 114 miles combined1 (hwy/city) on one full battery charge. Consuming only 27 kWh/100mi the BMW i3 is the most efficient car in its segment with the lowest electricity consumption costs of approximately 2.81 USD/100mi4.

The high-voltage battery of the BMW i3 consists of eight modules with twelve storage cells each and its capacity has increased by more than 50% without any changes in exterior dimensions. By optimizing the cell-internal packages with more electrolyte and adapting the active material, BMW and Samsung SDI have succeeded in increasing cell capacity to 94 Ah and overall battery energy to 33 kWh of which 27.2 kWh can be effectively used. The previous battery of the BMW i3 (60 Ah) produced 22 kWh (gross)/19 kWh (net).

The lithium ion cells used, set themselves apart in the competitive field by achieving a special balance between high energy density, cycle stability and safety in the case of an accident. The high-voltage battery also has an advanced thermal management system that keeps the battery operating in the optimal temperature range, which further enhances performance. For example, the coolant of the air conditioning system is responsible for cooling the high-voltage battery very effectively, while a heating system can also be used to warm the battery to ensure the optimal operating temperature before starting off. Customers receive an 8-year/100,000-mile High-voltage Battery Warranty.

The BMW i3 – a benchmark in terms of sustainability

During the development phase of the BMW i3, the entire architecture of the electric drivetrain was designed with the next technological steps as well as serviceability in mind. For example, if necessary a single battery module can be exchanged which distinguishes the BMW i3 from other competitive offers and represents an integral component of the holistic BMW i concept of sustainability. From the production stand point, sustainability is achieved to a large extent through the CO2 free electricity supply of the BMW i production sites in Leipzig (assembly) and Moses Lake (CFRP production) as well as through the use of 70 percent less water in the production process compared to conventional automobiles.

Optimized performance delivery, more efficient drive.

The BMW i3 is by far the lightest car in its segment. Despite the slight weight increase, at 2,961 lbs (BEV), and 3,234 lbs (REX), the BMW i3 (94 Ah) is characterized by driving performance, which is subjectively as agile as the 60 Ah model variant. The BMW i3 (94 Ah) is also powered by the same 3 phase AC synchronous electric motor developed in-house by the BMW Group. The motor generates an output of 170 hp and delivers 184 lb-ft of torque which is available as soon as the electric motor begins to turn. The BMW i3 (94 Ah) accelerates from 0 to 60 mph in just over 7 seconds. The impressive electric motor, small turning circle of 32.3 feet, – a major benefit to driving in the city – BMW’s near-perfect 50- 50 weight distribution, precise electric power steering and the stable suspension set-up help to make the i3 as satisfying to drive as every other BMW.

The sporty character of the BMW i3’s electric motor is also clearly noticeable by its performance figure of 5.1 seconds accelerating from 50 to 75 mph. This is a decisive factor for enabling fast and safe passing maneuvers, and is normally only achieved by combustion engine powered cars with considerably higher outputs. The BMW i3 (94 Ah) is close to the level of cars such as the (320 hp) BMW 340i. Power is transmitted to the rear wheels via the single-speed transmission, which the BMW i3 uses to accelerate without torque interruption to its electronically limited top speed of 93 mph.

The electric consumption of the BMW i3 (94 Ah) has also been reduced by a large number of detail improvements including revised electric motor management as well as advanced low-resistance tires with optimized compound.

Charging times.

The 7.4 kW charging electronics of the BMW i3 (94 Ah) can charge the 33 kWh battery in approximately 4.5 hours using a Level 2 charger, which is slightly more than the approximately 3.5 hours required to charge the battery on a BMW i3 (60 Ah). Standard equipment of the BMW i3 includes the occasional use cable for connecting it to a domestic power socket. Core elements such as range, hallmark BMW agility thanks to low weight and overnight battery charging remain in place.

The BMW i3 is equipped with the future-proof 50 kW direct current (DC) fast charging technology. When the BMW i3 (94 Ah) is connected to a DC fast charging station, the battery cells are charged up to a minimum of 80 percent of their capacity in less than 40 minutes. In the BMW i3 (60 Ah) this takes around 25 minutes. This means that the BMW i3 (94 Ah) achieves a charging speed of 2.5 mi/min which corresponds to 24 minutes charging time per 62 miles of range.

Range Extender for even greater range.

BMW i also offers a Range Extender for the BMW i3 (94 Ah).The range of the BMW i3 is extended by a 650 cc 2-cylinder gasoline engine which is located adjacent to the electric drive above the rear axle. The Range Extender engine delivers a maximum output of 38 hp and powers a generator in order to produce electricity, working on a required-based and highly efficient principle. For those occasional times where additional range is required, as soon as the charging level of the lithium ion batteries drops to a specified level, the Range Extender kicks in to keep the charging level constant effectively extending the range. Fitting the car with the Range Extender has no influence on the available luggage volume: the luggage compartment volume remains unchanged at 15.1 ft3 and can be extended to 36.9 ft3 with the rear seats folded down. The BMW i3 (94 Ah) now features a 2.4 gallon fuel tank improving the range from the previous model.

The BMW i3 (94 Ah) with Range Extender weighs approximately an extra 270 lb compared to the Battery Electric BMW i3 but is also characterized by a high level of agility and offers impressive performance figures. It accelerates from zero to 60 mph in just 8 seconds.

New equipment on the BMW i3.

The BMW i3 (94 Ah) is now available in the exclusive Protonic Blue metallic exterior color, previously only available in the US on the BMW i8. The BMW i3 (94 Ah) customer can also choose from two non-metallic paint colors (Capparis White and Fluid Black) and, in addition to Protonic Blue, three metallic paintwork colors (Mineral Grey, Platinum Silver and Ionic Silver).

The Deka World is now part of the standard profile of the BMW i3 (94 Ah) and features a lightweight dark cloth fabric interior made from recycled materials. Other changes to the standard profile include the addition of the Universal Garage Door Opener, Advanced Real- Time Traffic Information, and Comfort Access. As part of the Tera World, a Dark Oak Wood trim is also now included, with an alternative Light Eucalyptus Wood trim available as well. These trims are also available for ordering with the Giga World.

The highly anticipated electric moonroof is also available for ordering for the first time in the US. This option features individual shades and adds to the great set of convenience features that the BMW i3 has to offer.

Standard profile and equipment for the BMW i3 (94 Ah) includes: Automatic climate control, Dynamic Cruise Control, LED Headlights, HD Radio, DC Fast Charging, Navigation Business System, BMW Assist and BMW Teleservices. Other standard features include: the iDrive operation system, the BMW i RemoteApp functionalities, the Driving Dynamic Control switch, hands-free telephone operation, leather steering wheel and Park Distance Control (PDC).

BMW i3 – a success story.

The BMW Group took on a pioneering role when it founded the BMW i brand and decided to develop an independent vehicle structure and passenger cells made of carbon fiber reinforced plastic (CFRP) as well as BMW eDrive technology for a purely electric drive. The BMW i3, which was designed for local emissions-free urban mobility, as well as the trail- blazing BMW i8 Plug-in-Hybrid sports car combined with sustainability-oriented premium character. Since the November 2013 launch, the BMW i3 has already established itself at the top of its segment. The most important single market for the purely electric five door BMW i3 is the U.S. More than 80 percent of buyers deciding on a BMW i3 worldwide are new customers for the BMW Group. The BMW i3 and the BMW i8 received a large number of awards for innovations in the areas of lightweight construction, drive, sustainability, driving performance and design. This makes BMW i the brand to win the most awards in the world during its market launch phase.

Comfortable home charging: the new BMW Home Charger Connect. In late 2016, BMW i will be offering the new BMW Home Charger Connect, a residential charging station designed for comfortable and fast home charging. The new BMW Home Charger Connect, with a more compact, sleeker design, charges the battery of the BMW i3 (94 Ah) in approximately four hours and 30 minutes. The charging process starts automatically as soon as the car and charging cable are connected. The BMW Home Charger Connect is operated using an LED interface.

The BMW Home Charger Connect comes standard with WiFi and will feature innovative charging services which can be accessed remotely. This charger helps preserve vehicle range as it can precondition the vehicle battery when connected.

On the go: convenient public charging with ChargeNow.

ChargeNow is designed to optimize the public charging experience for BMW i customers, for easy access to public charging options. Thanks to ChargeNow’s partnerships with leading public EV charging network providers, BMW i drivers enjoy convenient access to public chargers along the way. Learn more at www.chargenowusa.com.

ChargeNow DC Fast5: Eligible BMW i3 drivers can recharge for no charge.

Offered by BMW in cooperation with EVgo, ChargeNow DC Fast allows eligible BMW i3 drivers in participating markets to enjoy 24 months of no cost charging sessions for the BMW i3 at participating EVgo Stations. Enrolled BMW i3 customers can use the ChargeNow card for unlimited 30 minute, DC Fast Combo charging sessions and Unlimited 1 hour, Level 2 charging sessions.

The BMW i3 is equipped with the future-proof 50 kW direct current (DC) Fast charging technology. When the BMW i3 (94 Ah) is connected to a DC Fast charging station, the battery cells are charged up to 80 percent of their capacity in less than 40 minutes. In the BMW i3 (60 Ah) this takes approximately 25 minutes.

ConnectedDrive: Setting standards through Connectivity.

The optional Navigation System Professional provides BMW ConnectedDrive Services especially developed for BMW i. The range assistant follows the planned and currently driven route. If the destination selected in the navigation system is beyond the car’s range, the driver receives the suggestion to shift to the ECO PRO or ECO PRO+ mode. Additionally, the system calculates a more efficient alternative route. Should it be necessary to recharge at a public charging station, the driver is shown all the available stations along the planned route.

A dynamic range map is another central element of the connected navigation unit. Apart from the current charging status of the battery, the driving style, the activated electric comfort functions and the selected driving mode, the topographic features, the current traffic situation and the outside temperature are all taken into consideration. The Advanced Real Time Traffic Information (ARTTI) data is used for this purpose. The data is provided by the BMW ConnectedDrive Server.

The BMW i3 also sets standards when it comes to connecting driver and car. The BMW i Remote App provides useful vehicle-related mobility planning data available on the customer’s smartphone. Apart from pedestrian navigation; navigating your way to your destination from the parking space and back, BMW ConnectedDrive offers a so-called intermodal routing system and for the first time in combination with the Navigation System Professional. This also incorporates public transport connections such as subway stops if this means you can reach your destination quicker. From the actual trip in the BMW i3, looking for a parking space, changing onto a metro and or a walking route, the BMW i ConnectedDrive services take the customer to his destination efficiently.

Daimler invest €500M in Hamburg plant for e-mobility components

Daimler is comprehensively modernizing the Mercedes-Benz Hamburg plant and is expanding its product portfolio to include key components for electric driving. This is part of the transformation plan that the company has agreed on with the works council. With the agreement in Hamburg, Mercedes-Benz Cars has now successfully set out the transformation plans for all plants in Germany.

“The completion of the transformation plans is an important milestone in our growth strategy. We put our vehicle and powertrain plants on a future-oriented and sustainable foundation and strengthen their international competitiveness. Thus, we increase the flexibility and efficiency in our global production network. For that purpose we are investing several billion euros”, said Markus Schäfer, Member of the Divisional Board Mercedes-Benz Cars, Production and Supply Chain Management.

The transformation plan ensures the competitiveness of the site and keeps employment stable. In addition, the agreement provides for a highly flexible production through modern shift models.

“With the investment of 500 million euros, we will develop the Hamburg plant into a high-tech site producing drive components for electric mobility. This is a proof for the high qualification and outstanding performance of our employees. The transformation plan is a future-oriented achievement for the plant that offers employees new opportunities”, says Wolfgang Lenz, Site Manager Mercedes-Benz plant Hamburg. Company and works council have agreed on an increase in training places, resulting in 26 positions each year for the years 2017 and 2018. Furthermore, ten new permanent jobs will be created and filled this year.

“For the employees, the now agreed transformation plan is a clear, positive signal: The plant takes part in the company’s growth strategy and profits from future prospects of the industry. Our central goal in the negotiations was the assurance of future products for the site. The increase in the number of training places and permanent positions indicate that the company continues to count on the plant in Hamburg”, says Jörg Thiemer, Chairman of the Works Council Mercedes-Benz plant Hamburg.

The production of axles and axle components, lightweight structural components and steering columns, along with exhaust technology, will remain an integral part of the plant. The agreement provides the Mercedes-Benz plant Hamburg with extra capacity for axles and axle components. The third generation of steering columns will also be produced in Hamburg. This means that every Mercedes-Benz vehicle will continue to include a part from Hamburg. With the production of the cockpit crossmember for the C- and E-Class, lightweight structural components will continue to be produced here.

The innovative components, manufactured using environmentally responsible production technologies, make a significant contribution to reducing vehicles’ CO2 emissions.

“With the transformation plan for the Hamburg plant we are continuing the successful strategic realignment of our German powertrain plants. We have defined a sustainable product portfolio and measures to increase efficiency and flexibility for all plants, leaving us extremely well prepared to face the future”, says Frank Deiß, Head of Production Powertrain Mercedes-Benz Cars and Site Manager Mercedes-Benz plant Untertürkheim.

Daimler recently announced a 500 million Euros investment in a new battery factory in Germany. The new battery factory will produce lithium-ion battery packs for hybrid and electric vehicles for Mercedes-Benz and smart brands.

Daimler has also said it is open to the idea of creating an alliance between Germany's premium carmakers to manufacture next-generation batteries.

Ford CEO confirms plans for long-range electric car

Ford CEO Mark Fields said the Dearborn automaker will not be left behind in the race to develop long-range electric vehicles like the Tesla Model 3 and Chevrolet Bolt that can go 320 km (200 miles) or more on a single charge.

“We want to make sure that we’re either among the leaders or in a leadership position,” Fields said during a conference call Thursday with analysts. “When you look at some of the competitors and what they’ve announced, clearly, that’s something we’re developing for.”

The Chevrolet Bolt will have a range of at least 320 km and a starting price of about $27,000 when it goes on sale later this year.

Tesla CEO Elon Musk generated global buzz when he unveiled the Tesla Model 3 earlier this month. That car is expected to have 345 km (215 miles) of range and will go on sale in late 2017 at a starting price of $35,000.

Earlier this month, Automotive News reported that the automaker was satisfied with its 2017 Focus Electric that will get 160 km (100 miles) on a full charge, saying that vehicle will satisfy a large chunk of consumers.

Fields didn’t say when Ford plans to launch a vehicle to match Tesla's Model 3 or the Chevrolet Bolt, but made it clear Ford is pressing forward.

He did reiterate Ford's plans to spend $4.5 billion over the next four years to develop 13 new hybrid or electric vehicles.

"Our approach, very simply, is to make sure we are among the leaders or in a leadership position in the product segments that we are in," Fields said.

Ford Motor Company are collaborating with Xerox PARC and Oak Ridge National Laboratory to develop pouch cells with a 20% improvement in gravimetric energy density (Wh/kg), and a 30% reduction in $/kWh costs for electric vehciles.

DARPA is developing smarter, faster armored ground vehicles

Today’s ground-based armored fighting vehicles are better protected than ever, but face a constantly evolving threat: weapons increasingly effective at piercing armor. While adding more armor has provided incremental increases in protection, it has also hobbled vehicle speed and mobility and ballooned development and deployment costs. To help reverse this trend, DARPA’s Ground X-Vehicle Technology (GXV-T) program recently awarded contracts to eight organizations.

DARPA's Ground X-Vehicle Technology (GXV-T) program seeks to develop groundbreaking technologies that would make future armored fighting vehicles significantly more mobile, effective, safe and affordable.

Radically Enhanced Mobility—Ability to traverse diverse off-road terrain, including slopes and various elevations. Capabilities of interest include revolutionary wheel/track and suspension technologies that would enable greater terrain access and faster travel both on- and off-road compared to existing ground vehicles.

Like previous autonomous off-road military vehicle prototypes, for example Carnegie Mellon University's "Crusher", (pictured below) all-wheel-drive in-wheel motor electric powertrains are a key enabling technology for these next generation vehicles.

“We’re exploring a variety of potentially groundbreaking technologies, all of which are designed to improve vehicle mobility, vehicle survivability and crew safety and performance without piling on armor,” said Maj. Christopher Orlowski, DARPA program manager. “DARPA’s performers for GXV-T are helping defy the ‘more armor equals better protection’ axiom that has constrained armored ground vehicle design for the past 100 years, and are paving the way toward innovative, disruptive vehicles for the 21st Century and beyond.”

Volvo targets one million electrified cars by 2025

Volvo has set itself a target of producing one million electrified cars by 2025, in a bid to serve the growing demand for battery-powered vehicles.

The Swedish car maker is aiming to produce two hybrid versions of every model in its range, with the first all-electric car expected to appear in 2019.

“It is a deliberately ambitions target,” said Volvo boss Håkan Samuelsson. “It’s going to be a challenge, but Volvo wants to be at the forefront of this shift to electrification”.

Volvo says it has been preparing for the move to electric vehicles for five years by developing two platforms, both of which can incorporate hybrid and electric technology, with one for large cars and one for small cars.

The Scalable Product Architecture (SPA) platform will be used for its 90 and 60 series models, with the soon to be launched 40 series using the Compact Modular Architecture (CMA). All of its models will be available with as electrified versions.

Last year, Volvo announced that it would launch an all-electric rival to Tesla, with a range of 325 miles, by 2019. Volvo says the years between 2020 and 2025 are a “period of critical acceptance” for the electric vehicle, as it aims to make electric cars part of the mainstream market.

LeEco Unveils LeSEE Autonomous Electric Vehicle Concept [VIDEO]

China's Le Holdings Co Ltd, also known as LeEco and formerly as LeTV, on Wednesday unveiled an all-electric battery concept car whose production version the company hopes will compete head-on with Tesla Model S.

The concept car, called LeSEE, which hints at a production version of the car LeEco is widely expected to launch in the future, is one of an array of similarly positioned premium electric vehicles (EVs) due to hit the market in the next few years from more than half a dozen Chinese-funded EV start-ups.

LeEco said the concept car, which will be displayed at next week's Beijing auto show, is not only fully electrically propelled but has been engineered to be a "smart", "connected" and "automated self-driving" car.

Jia Yueting, co-founder and head of LeEco, said he hopes that when the car hits the market it will help China's auto industry reach the forefront of the global auto sector.

"When everyone is questioning us over our ability to develop a car like this and is laughing at us, we are still able to be here and show you this car ... I am so emotional," Jia said at a LeEco launch event for several products in Beijing on Wednesday.

Jia said LeEco is also developing a car-sharing business in connection with its green car efforts.

He said one day LeEco cars would be offered free of charge to consumers because the company aims to make money on content and other services it sells through those connected cars. Jia did not say when that day might come.

"Our cars' pricing model will be similar to pricing models for cellphones and tv sets we sell today," he said. "One day our cars will be free ... We are getting there some day."

LeEco's electric vehicle unit and other EV startups in China proliferated after the government, looking to fuel a more determined switch to electricity as the ultimate alternative to petrol, liberalized and opened its automotive industry to allow deep-pocketed tech firms to invest as long as they dabble in electric cars.

Aside from LeEco, the likes of Baidu, Alibaba, Xiaomi Inc, Tencent and other tech firms have funded more than half a dozen EV start-ups, which include NextEV and CH-Auto.

Those new players have been emboldened by the government's all-out support for all types of electric cars, which includes generous incentives to buyers.

They also expect industry policymakers to mandate providers of public transportation such as bus companies, taxi operators and even courier services to purchase electric vehicles and invest in charging infrastructure to usher in an electric future.

VW Push for All-Electric Rallycross Supercars

Volkswagen is considering the development of an all-electric rallycross supercar.

The German firm's head of technology Frank Welsch says the short, sharp format of rallycross events offers the perfect showcase for advances in electric car technology.

“I can certainly imagine a championship done with all-electric cars,” Welsch told Autocar. “The races are around six minutes long, which allows for short, intense bursts of competition and then charging.”

VW already competes in Red Bull Global Rallycross with factory Beetle GRCs and in FIA World Rallycross with Polo RXs. Both cars squeeze around 560 HP out of their tiny engines and reach 100km/h in just 2 seconds.

“Today these cars are super-powerful, have torque from hell and use all-wheel drive,” said Welsch. “Electric drivetrains could deliver that.”

Welsch went on to say that “If the championship moved that way it would be perfect for us.”

Are Friction Brakes Redundant on Electric Vehicles & Hybrids?

The Toyota Prius, the world's first mass-produced hybrid vehicle, went on sale in Japan in 1997. 18 years later with sales surpassing 8 million vehicles, we're starting to get a clear picture of how durable vehicles powered by electric powertrains are.

The humble Prius has proved so durable, with regular news of taxi operators surpassing 1 million km (the record stands at 1.5M km), there is even a thread on the priuschat website designated for Prius owners who have passed 299,999 miles (480,000 km).

Not only are most Prius achieving these distances on the original battery pack (dispelling that urban myth) but in many cases they are also still on the original factory fitted set of brake pads!! With a Prius able to use brake regeneration down to 10 km/h, industry standard hydro-mechanical friction brakes move from being a system made up of consumable parts to being a durable system that last the life of the vehicle.

Typical brake pad life expectancy on an ICE car is between 50-100,000 km with brake rotors needing replacement every 100-200,000 km so the increase in Prius pad life is in the 10x region.

If the relatively low powered 50 kw electric motor / generator in the Prius has made friction brakes 95% redundant, then vehicles like the BMW i3 with a much more powerful electric motor (125 kw) and aggressive speed variable brake regeneration capable of bringing the car to a complete stop, make friction brakes entirely a legacy system whose only function is to provide very low duty cycle safety functions such as Anti-Lock Brakes (ABS) and Electronic Stability Control (ESC).

Taxi operators running fleets of Nissan Leaf are also reporting high mileage on original brake pads and no doubt given enough time will also pass 500,000 km without a pad &/or rotor change. Leaf owners have the added benefit of not having an ICE to service (Prius ICE's reportedly consume excessive oil above 500,000 km) and with typical electric motor life measured in the 20-40,000 hour range, electric only powertrains could last in excess of 2 million kilometres of trouble free motoring, compared to a typical ICE car life expectancy of 320,000 km (200,000 miles).

The more brake regeneration becomes a standard in the automotive world, the more inevitable the elimination of the dead weight and costs associated with legacy friction brake systems seems. In order to allow electromagnetic braking to functionally replace all mandatory safety systems like ESC, each wheel requires an electric motor to drive / brake each wheel independently.

Technologies that we take for granted these days — like stability control and anti-lock brakes — paved the way for computer-controlled cars, and these long-established safety technologies are mandated by NHTSA etc. Automakers today agreed to make automatic emergency braking standard in US by 2022. Automatic braking, like lane keeping and dynamic cruise control, is considered a precursor to fully autonomous vehicles.

The convergence of vehicle electrification and self-driving cars will accelerate the need to consolidate all vehicle dynamic controls for propulsion and braking within a single system, i.e. Software Eats the Automotive Powertrain.

2017 BMW i3 to get 200 km (EPA) range, starts production in July

BMW will boost the range of its i3 electric car by about half for the 2017 model year.

This summer, the lithium ion battery pack of the compact EV will be improved, "which puts it into a much more usable range," Ian Robertson, BMW AG board member for sales and marketing, told Automotive News at the Detroit auto show.

BMW doesn't have the exact figure yet, but a 50 percent increase means about 200 km on a single charge, up from the current 130 km (EPA).

The 2017 i3 will begin production in July of 2016 and will use Samsung 94 Ah battery cells. The 2017 i3 needs the increase in range to compete with the 2016 30 kWh Nissan Leaf with 250 km range and the upcoming Chevy Bolt, which will have a range of 300+ km.

The i3 went on sale in the U.S. in the spring of 2014 and has a base price of $43,350 including shipping. A model with a range extender is also available -- with about double the range -- and starts at $47,200 including shipping. Those prices are before tax credits.

BMW sold 24,057 i3s worldwide last year, an increase of 50 percent from 2014. In the United States, BMW sold 11,024 i3s, up from 6,092 in 2014. Nearly 60 percent of those were with the range extender.

GM Buying 3 yo Self-Driving Tech Startup for $1 Billion

General Motors announced Friday it is buying Cruise Automation, a San Francisco self-driving vehicle startup, the latest move by the auto company as it competes with Silicon Valley to develop self-driving cars that could be used in ride-sharing fleets.

GM and Cruise did not disclose the value of the deal. Technology website Re/Code cited sources as saying GM paid $1 billion. A GM spokesman declined to comment on that figure. If correct GM has just set a new precedent for valuations of automotive tech start-ups.

GM intends to use Cruise’s technology and people to accelerate its effort to develop vehicles that can operate without a human driver, potentially as part of ride-sharing fleets “as soon as possible,” GM President Dan Ammann said in an interview.

“We will be committing considerable resources to recruit and grow the capability of the team,” Ammann said.

Cruise has been working to develop hardware and software that could be installed in a vehicle to enable the car to pilot itself on a highway, without the driver steering or braking.

GM initially planned an investment in the company but moved within five weeks to buy Cruise outright, said venture partner Nabeel Hyatt of Spark Capital, an investor in Cruise.

"They moved faster than most Silicon Valley companies would move," he said.

Cruise, which has 40 employees, was launched in 2013 and has raised $20 million in venture capital, founder Kyle Vogt said in an interview.

Vogt impressed Silicon Valley venture capital fund Signia Venture Partners by demonstrating an Audi A4 that could be controlled by a game console, said Signia principal Sunny Dhillon.

More recently, Cruise was working on a system that could make a car "fully driverless," Vogt said.

A flurry of investments by traditional auto companies reflects a fear among industry executives that the century-old business of building and selling cars that people drive themselves is at risk, even though global vehicle demand is strong.

In January, GM said it would invest $500 million in ride-hailing company Lyft Inc and followed that by forming a new car-sharing operation called Maven. The company has also established a separate unit for self-driving vehicle development.

Other automakers are moving into ride sharing and self-driving vehicles, as are some traditional auto suppliers.

Germany’s Continental and Delphi Automotive among others are seeking technology companies to buy for intellectual property and programming talent.

Panasonic & Bosch bid for Porsche Mission-E battery

Porsche AG has been weighing bids from Panasonic Corp. and Robert Bosch GmbH for a long-range battery as it prepares to challenge Tesla Motors Inc. with an all-electric sports car, according to people familiar with the matter.

Costs for the package offered by crosstown neighbor Bosch would be higher than the competing technology from Japanese peer Panasonic, which supplies Tesla’s batteries, said the people, who asked not to be identified because the talks are confidential. The advantage to Bosch’s offer would be less-complex logistics.

“We’re in the final stage of making a decision,” Porsche Chief Executive Officer Oliver Blume said in an interview last week at the Geneva International Motor Show. He declined to comment on the suppliers being considered.

The unit of Volkswagen AG, Europe’s largest automaker, earmarked 1 billion euros ($1.1 billion) to build its first battery-powered sports car in December. It’s part of the parent company’s broader push for more low-emission electric and hybrid cars. Volkswagen has sped up its electric efforts since admitting six months ago it had cheated on emissions tests for diesel cars.

Audi CEO Rupert Stadler said a week ago the company, a fellow Volkswagen unit, will purchase batteries for its electric vehicles from Korean suppliers LG Chem Ltd. and Samsung Electronics Co., who have plans in place to start producing battery cells in Europe.

Electric Investment

With the Volkswagen scandal throwing the long-term future of diesel into question, other carmakers are also turning anew to electric cars. Daimler AG’s Mercedes-Benz said last week it will invest 500 million euros to build a second battery factory in Germany because it expects demand to pick up.

Porsche’s electric sports car will be based on the low-slung Mission E concept shown at the Frankfurt auto show six months ago. Set to be produced near the automaker’s German headquarters in Stuttgart, the new model will create some 1,000 jobs.

A spokesman for Porsche referred to the brand’s annual earnings conference, scheduled Friday morning, and declined to comment beforehand. Bosch declined to comment. Yayoi Watanabe, a spokeswoman for Panasonic, declined to comment.

Drive Unit and Battery at Heart of Chevrolet Bolt EV [VIDEO]

The 2017 Chevrolet Bolt EV does more than set a new benchmark for affordable, long-range EV driving. It also raises the bar when it comes to driving performance.

Engineers developed the Bolt EV’s propulsion system to offer more than an estimated 200 miles (based on GM estimates) and a peppy driving experience that’s more akin to a compact sports sedan than a small utilitarian crossover.

“Being the leader in range and affordability means nothing if the car isn’t going to excite you each time you get behind the wheel,” said Josh Tavel, Chevrolet Bolt EV chief engineer. “That’s why the team was tasked with delivering a propulsion system that would also make the Bolt EV an electric vehicle that owners would love to drive.”

Single Motor Drive Unit
Like most EVs on the road, the Bolt EV’s drive system uses a single high capacity electric motor to propel the car. But it’s the smooth, powerful and quiet motor design, gear configuration and shift-by-wire system that separates it from the pack.

The engineering team designed the Bolt EV’s electric motor with an offset gear and shaft configuration tailored to meet efficiency and performance targets – most notably more than an estimated 200 miles of range. The motor is capable of producing up to 266 lb.-ft. (360 Nm) of torque and 200 hp (150 kW) of motoring power. Combined with a 7.05:1 final drive ratio, it helps propel the Bolt EV from 0-60 mph in less than seven seconds.

Power delivery is controlled by Chevrolet’s first Electronic Precision Shift system. This shift and park-by-wire system sends electronic signals to the Bolt EV’s drive unit to manage precise feel and delivery of power and torque, based on drive mode selection and accelerator inputs. A by-wire shifter requires less packaging space than a traditional mechanical shifter, resulting in more interior space and improved interior layout.

60 kWh Battery System
Having more than 1.3 billion miles of EV experience from the Chevrolet Volt helped Bolt EV battery engineers and strategic partner LG Electronics to develop an all-new cell and battery pack to offer more than an estimated 200 miles of range.

Battery system preliminary specifications include:

  • 60 kWh lithium-ion battery pack.
  • 288 lithium ion cells
  • Five sections
  • 10 modules
  • 96 cell groups – three cells per group
  • 960 lbs. (435 kg) total weight

    “You usually have a battery cell that delivers either the desired levels of energy or power, but not traditionally both. With this cell design and chemistry we were able to deliver a battery system with 160 kilowatts of peak power and 60 kilowatts hours of energy,” said Gregory Smith, Bolt EV battery pack engineering group manager.

    The battery uses active thermal conditioning, similar to the Chevrolet Volt, to keep the battery operating at its optimum temperature, which results in solid battery life performance. The Bolt EV battery will be covered by an 8-year/ 100,000 mile (whichever comes first) limited warranty.

    Inside the battery pack – which spans the entire floor, from the front foot well to back of the rear seat – is a new cell design and chemistry. The nickel-rich lithium-ion chemistry provides improved thermal operating performance over other chemistries, which requires a smaller active cooling system for more efficient packaging. The chemistry allows the Bolt EV to maintain peak performance in varying climates and driver demands.

    The cells are arranged in a “landscape” format and each measures in at only 3.9 ins. (100 mms) high and 13.1 ins. (338 mms) wide providing improved packaging underfloor. The lower profile cell design enabled the vehicle structure team to maximize interior space.

    The battery system is mated to a standard equipment 7.2 kW onboard charger for regular overnight charging from a 240-V wall box. A typical commute of 50 miles can be recharged in less than two hours. Bolt EV also features an optional DC Fast Charging system using the industry standard SAE Combo connector. Using DC Fast Charging, the Bolt EV battery can be charged up to 90 miles of range in 30 minutes. Outside temperatures may affect charging times.

    Regen System Provides One-Pedal Driving
    Regenerative braking has become more than just a tool to boost range, it’s also transformed into a feature that can provide an improved EV driving experience. The Bolt EV features a new regenerative braking system that has the ability to provide one pedal driving.

    “Interviews with EV enthusiasts indicated their desire for one pedal driving capability on the Bolt EV. One pedal operation boosts the thrill and uniqueness of EV driving,” Tavel said.

    Through a combination of increased regenerative deceleration and software controls, one pedal driving enables the vehicle to slow down and come to a complete stop without using the brake pedal in certain driving conditions.

    When operating the Bolt EV in “Low” mode, or by holding the Regen on Demand paddle located on the back of the steering wheel, the driver can bring the vehicle to a complete stop under most circumstances by simply lifting their foot off the accelerator, although the system does not relieve the need to use the brake pedal altogether.

    Operating the Bolt EV in “Drive” mode and not pulling the paddle while decelerating delivers a driving experience where usage of the brake pedal is required to stop.

  • Daimler to invest 500 million Euros in new battery factory in Germany

    Daimler will invest 500 million Euros in a new battery factory in Germany. The new battery factory will produce lithium-ion battery packs for hybrid and electric vehicles for Mercedes-Benz and smart brands.

    Li-Tec, a subsidiary of the Daimler Group, ceased manufacture of battery cells in December 2015. The majority of the 280 employees were transferred to the Deutsche Accumotive—also a wholly owned Daimler subsidiary—which manufactures battery packs based on LG Chem cells.

    Daimler consistently expands its activities in the area of electromobility and invests around 500 million Euros in the construction of a new battery factory. This will lead to a significant expansion of the production capacities for lithium-ion batteries of Deutsche ACCUMOTIVE located in the Saxon city of Kamenz.

    The new factory will produce batteries for electric and hybrid vehicles of the brands Mercedes-Benz and smart. As a first step, the full Daimler subsidiary has purchased about 20 hectares of land adjacent to the existing battery factory.

    "To get closer to fully electric driving, we keep investing big in the key component of emission-free vehicles: powerful batteries. We are now devoting another 500 million Euros to build a second battery factory in Germany. This underlines our commitment to the consistent expansion of electromobility", said Dr. Dieter Zetsche, Chairman of the Board of Management of Daimler AG and Head of Mercedes-Benz Cars.

    Daimler announced a initial 100 million euros investment to expand East German battery pack output in 2014.

    With the growing electrification of the automobile, the demand for highly efficient lithium-ion batteries is also rising steadily. Through its entry into the new business field with stationary battery storage for private and industrial applications, Deutsche ACCUMOTIVE will tap into additional growth opportunities.

    By the end of 2014, the Daimler subsidiary had already announced its plans for a significant increase in its production capacities and an investment of around 100 million Euros in the expansion of the existing battery factory. "With the purchase of the new land, our production area at the site will be tripled.

    The previous 20,000 square meters will be stocked up by an additional 40,000 square meters of production space. We will expand the production capacity consistently in the coming years", said Harald Kröger, Head of Development Electrics/Electronics and e-Drive Mercedes-Benz Cars.

    The groundbreaking ceremony for the new factory is planned for fall 2016. The topping-out ceremony will then follow in spring 2017. The new production plant is to start operations in summer 2017.

    Daimler entered into the business with stationary battery storage with Deutsche ACCUMOTIVE last year. The scalability of the systems enables the use of the lithium-ion batteries in big industry for network stabilization and smoothing of peak shaving for energy producers as well as private households, for example in conjunction with photovoltaic installations.

    Mercedes-Benz energy storage units for private households can already be ordered and will soon be installed at customers in collaboration with selected sales partners. In the area of industrial applications, around 29 megawatt will be connected to the network jointly with different partners.

    Tesla Model X vs Model S P90D 1/4 Mile Drag Race [VIDEO]

    Watch the all new Tesla Model X P90D Ludicrous race the Model S also with Ludicrous in an all out drag racing shootout.

    The Model X P90D with the $10,000 Ludicrous Mode runs 11.61 @ 116 MPH in the 1/4 mile setting a new world record for the quickest production SUV/CUV. 0-60 MPH came up in just 3.1 seconds. The Model S ran 11.3-11.5 @ 116 MPH.

    Source: Dragtimes

    Audi e-tron SUV and Battery series production for Belgium plant in 2018

    Audi is preparing its international production network for the mobility of the future. Large series production of the first purely electric driven SUV from Audi will begin at the site in Brussels in 2018. The plant will also produce its own batteries. The company will transfer production of the Audi A1 from Belgium to Martorell in Spain. The Audi Q3, which is currently produced in Spain, will be built in Győr (Hungary) in the future.

    The model rotation will benefit all the sites of Audi’s global production network. “The new model distribution will enhance our production efficiency and strengthen all of the sites involved,” stated Rupert Stadler, Chairman of the Board of Management of AUDI AG. “It will allow us to utilize further synergies within the Volkswagen Group and to bundle key competencies.” The model decisions protect jobs and promote the internationalization of the production network.

    As of 2018, Audi Brussels will exclusively produce the first battery‑electric SUV from the brand with the Four Rings for the world market. The Audi e-tron quattro concept study that was presented at the Frankfurt Motor Show in 2015 provides a clear indication of the final production version. The sporty SUV will fit between the Audi Q7 and the Audi Q5 in the product portfolio. Equipped with three electric motors and a high‑capacity battery, the Audi e-tron model will offer a maximum of sportiness, driving dynamics and efficiency. It will have full everyday practicality with a range of more than 500 kilometers and will feature quick battery charging.

    The Brussels plant will also have its own battery production. The site in Belgium will thus become a key plant for electric mobility at the Volkswagen Group.

    Germany wants to put 2 billion euros into encouraging electric cars

    German Economy Minister Sigmar Gabriel wants to commit two billion euros ($2.17 billion) to encourage more people to buy electric cars, the newspaper Die Zeit reported on Wednesday.

    Buyers of electric cars would receive a subsidy from the government, the newspaper said, giving no further details.

    Gabriel also wants to expand charging stations and encourage federal offices to use electric cars - an initiative that will be funded under the current German budget without tax increases, he said.

    The German government aims to put one million electric cars on the roads by 2020. Among the country's carmakers, BMW, Mercedes and Volkswagen now produce all-electric cars; Audi, Mercedes and Porsche have plans to build one.

    Sales of electric cars totaled some 19,000 in 2014, but at the end of 2014 Germany had only 2,400 charging stations and around 100 fast-charging points.

    Calls for supporting electric cars grew at the end of last year after the Volkswagen emissions scandal. Both Gabriel and his fellow Social Democrat Environment Minster Barbara Hendricks have called for a quota for electric cars.

    Chevrolet Bolt EV specs released

    Hard on the heels of the reveal of the production Volt EV at CES 2016 in Las Vegas, Chevrolet used the North American International Auto Show in Detroit to release additional details on the battery and drivetrain of the new BEV. Engineers developed the Bolt EV’s propulsion system to offer more than an estimated 200 miles and a sporty driving experience.

    The Bolt EV’s drive system uses a single high capacity electric motor to propel the car. The engineering team designed the Bolt EV’s electric motor with an offset gear and shaft configuration tailored to meet efficiency and performance targets—most notably more than an estimated 200 miles of range. The motor is capable of producing up to 266 lb-ft (360 N·m) of torque and 200 hp (150 kW) of motoring power. Combined with a 7.05:1 final drive ratio, it helps propel the Bolt EV from 0-60 mph in less than seven seconds.

    Power delivery is controlled by Chevrolet’s first Electronic Precision Shift system. This shift and park-by-wire system sends electronic signals to the Bolt EV’s drive unit to manage precise feel and delivery of power and torque, based on drive mode selection and accelerator inputs. A by-wire shifter requires less packaging space than a traditional mechanical shifter, resulting in more interior space and improved interior layout.

    Having more than 1.3 billion miles of EV experience from the Chevrolet Volt helped Bolt EV battery engineers and strategic partner LG Electronics to develop an all-new cell and battery pack to offer more than an estimated 200 miles of range. Battery system preliminary specifications include:

  • 60 kWh lithium-ion battery pack
  • 160 kW peak power
  • 288 lithium ion cells
  • Five sections
  • 10 modules
  • 96 cell groups – three cells per group
  • 960 lbs. (435 kg) total weight
  • 285 liters

    The battery uses active thermal conditioning, similar to the Chevrolet Volt, to keep the battery operating at its optimum temperature, which results in solid battery life performance. The Bolt EV battery will be covered by an 8-year/ 100,000 mile (whichever comes first) limited warranty.

    Inside the battery pack—which spans the entire floor, from the front foot well to back of the rear seat—is a new cell design and chemistry. The nickel-rich lithium-ion chemistry provides improved thermal operating performance over other chemistries, which requires a smaller active cooling system for more efficient packaging. The chemistry allows the Bolt EV to maintain peak performance in varying climates and driver demands.

    The cells are arranged in a “landscape” format and each measures in at only 3.9 ins. (100 mms) high and 13.1 ins. (338 mms) wide providing improved packaging underfloor. The lower profile cell design enabled the vehicle structure team to maximize interior space.

    The battery system is mated to a standard equipment 7.2 kW onboard charger for regular overnight charging from a 240-V wall box. A typical commute of 50 miles can be recharged in less than two hours. Bolt EV also features an optional DC Fast Charging system using the industry standard SAE Combo connector. Using DC Fast Charging, the Bolt EV battery can be charged up to 90 miles of range in 30 minutes. Outside temperatures may affect charging times.

    Regen System Provides One-Pedal Driving. Regenerative braking has become more than just a tool to boost range, it’s also transformed into a feature that can provide an improved EV driving experience. The Bolt EV features a new regenerative braking system that has the ability to provide one-pedal driving.

    Through a combination of increased regenerative deceleration and software controls, one pedal driving enables the vehicle to slow down and come to a complete stop without using the brake pedal in certain driving conditions.

    When operating the Bolt EV in “Low” mode, or by holding the Regen on Demand paddle located on the back of the steering wheel, the driver can bring the vehicle to a complete stop under most circumstances by simply lifting their foot off the accelerator, although the system does not relieve the need to use the brake pedal altogether.

    Operating the Bolt EV in “Drive” mode and not pulling the paddle while decelerating delivers a driving experience where usage of the brake pedal is required to stop.

  • Overview

    Model:
    Chevrolet Bolt EV
    Body style / driveline:
    front-wheel-drive, five-passenger, five-door all-electric CUV
    Construction:
    Steel and Aluminum
    EPA vehicle class:
    Small Wagon (EPA does not have a cross-over category)
    Key competitors:
    Nissan Leaf, BMW i3, Ford Focus Electric, Kia Soul EV, VW eGolf Mercedes-Benz B-Class Electric
    Manufacturing location:
    Orion Township, Mich.
    Battery manufacturing location:
    Incheon, South Korea
    Motor and drive unit manufacturing location:
    Incheon, South Korea

    Battery System

    Type:
    rechargeable energy storage system comprising multiple linked modules 
    Volume/case:
    285L
    Mass (lb / kg):
    960 lb./435 kg
    Battery chemistry:
    lithium-ion
    Thermal system:
    liquid active thermal control
    Cells:
    288
    Electric driving range:
    More than 200 miles (GM estimate pending final tests)
    Energy:
    60 kWh
    Warranty:
    eight years / 100,000 miles

    Electric Drive

    Type:
    Single motor and gearset
    Motor:
    permanent magnetic drive motor
    Power:
    200 hp/150 kW
    Torque: (lb-ft / Nm):
    266 lb.ft./360 Nm
    Final drive ratio (:1):
    7.05:1

    Charging Times

    120 V:
    Available with standard cordset
    240 V:
    50 miles of range in less than 2 hrs.
    SAE Combo DC Fast Charge:
    90 miles in 30 minutes



    Performance

    Top speed (mph):
    91 mph / 145 kph *
    0-30 mph:
    2.9s (75% SoC) *
    0-60 mph:
    Under 7 seconds

    Chassis/Suspension

    Front:
    Independent MacPherson strut-type front suspension with side load compensating and finely tuned springs, direct-acting solid stabilizer bar system and ride & handling oriented LCA bushings.
    Rear:
    Compound crank (torsion beam) type rear suspension with the closed section V-shaped profile axle; specifically tuned coil springs, performance balanced shock absorber,  angled A-bushing supporting understeer tendency on cornering maneuver and kinematically optimized torsion beam providing stable and best ride & handling performance.
    Chassis control:
    Four-channel ABS; Traction control system; StabiliTrak; Drag control
    Steering type:
    column-mounted electric power steering
    Steering wheel turns, lock-to-lock:
    2.91 revolution *

    Turning radius, curb-to-curb ( ft. / m):
    10.8m *

    Steering ratio:
    16.8 :1

    Brakes

    Type:
    power four-wheel disc with ABS; electro-hydraulic; partially regenerative; dynamic rear brake proportioning
    Brake rotor diameter front  (mm / in):
    276mm
    Brake rotor diameter rear (mm / in):
    264mm
    Total swept area (cu cm):
    Front : 1398.9
    Rear : 1131.4

    Wheels/Tires

    Wheel size and type:
    17in x 6.5J offset 44, cast aluminum
    Tires:
    Michelin Energy Saver A/S 215/50R17 all-season

    Dimensions

    Exterior
    Wheelbase (in / mm):
    102.4 / 2600
    Overall length (in / mm):
    164.0 / 4166
    Overall width (in / mm):
    69.5 / 1765(W103)
    Track width front (in / mm):
    1500.92 mm
    Track width rear (in / mm):
    1501.05 mm
    Height (in / mm):
    62.8 / 1594(H100)
    Front overhang (in / mm):
    32.9 / 836
    Rear overhang (in / mm):
    28.7 / 730
    Interior
    Seating capacity (front / rear):
    2 / 3
    Headroom (in. / mm):
    39.7 / 1009  1st row
    37.9 / 962    2nd row
    Shoulder room (in / mm):
    54.6 / 1387  1st row
    52.8 / 1340  2nd row
    Hip room (in / mm):
    51.6 / 1310  1st row
    50.8 / 290    2nd row
    Legroom (in / mm):
    41.6 / 1056  1st row
    36.5 / 927    2nd row
    Cargo volume (cu ft / L):
    16.9 cu-ft / 478 L
    (V10, Wagon CVI – Max behind rear seat)
    Passenger volume (cu ft / L):
    PV1 52.2 cu-ft / 1478 L   1st row
    PV2 42.2 cu-ft  / 1195 L  2nd row

    Capacities

    Curb weight (lb / kg);
    3580 lb / 1625kg based on target (w/o 2passengers)
    Heating cooling (qt / L):
    Heating loop 1.8L
    Battery pack cooling (qt / L):
    6.9L (RESS cooling loop total coolant volume)
    Power electronics cooling (qt / L):
    3.9L (PE & DU cooling loop total coolant volume)
    Drive unit fluid (qt / L):
    2.9L
    Note: Information shown is current at time of publication.






  • 26-Year-Old Hacker Builts a Self-Driving Car…for Tesla.. in His Garage [VIDEO]

    Tesla's Autopilot uses hardware from both Mobileye and Nvidia to control the Model S on highways. Apparently Tesla would like to discontinue using Mobileye’s system in favor of bringing it in-house, according to an email exchange between Tesla CEO Elon Musk and George Hotz, a software engineer mainly known for being the first person to jailbreak the iPhone.

    A report by Bloomberg's Ashlee Vance would have us believe 26-year old hacker George Hotz has built a self-driving car from scratch in a month. Unfortunately for this urban myth, it's fairly obvious the 2016 Acura ILX he's using isn't a random choice.... Honda have offered Adaptive Cruise Control with Lane Assist since 2013.

    AcuraWatch Plus is a basic $1300 option available on this car that provides Adaptive Cruise Control, Lane Keeping Assist, Collision Mitigation Braking & Road Departure Mitigation.. So this Honda can do what he's demonstrating off the showroom floor.

    A more accurate description of Hotz's work is "reverse engineering".

    Tesla Model S is the Fastest Selling Electric Vehicle in NSW

    Nissan is celebrating 5 years of the LEAF and Tesla Australia is celebrating 1 year in Australia. With the upcoming New year I thought it would be good to look back at the history of electric vehicles in NSW.

    Growth

    Lets look at growth in NSW Tesla don’t share their data with VFACTS, the industry body for new car sales reporting but RMS/RTA do keep registration statistics on how many cars of a particular brand are sold and what type of fuel they use. Using those statistics we can look at how many “pure electric” vehicles are on the road in NSW. The first production EV was the Mitsubishi i-MiEV launched in 2010 before then the 44 or so vehicles registered as electric with the RTA/RMS where most likely conversions.

    What’s included in this count? RMS count petrol/electrics separately so this count doesn’t include plug-in hybrids like the Outlander PHEV, Holden Volt or BMW i3 Rex. What it does include is listed below with their official release dates.

    Release Dates :

  • 2010 August Mitsubishi i-MiEV (Limited selective client release)
  • 2011 August Mitsubishi i-MiEV (source: MMAL Press release )
  • 2012 June Nissan LEAF (source: Nissan Press release )
  • 2014 December BMW i3 (excluding the REX hybrid version)
  • 2014 December Tesla Model S (The amount of registered Tesla’s is shown in red)

    Performance

    If we look at registrations since 3rd Quarter 2011 when electric vehicles began sales to the general public we see 524 registrations to date at a rate of 33 vehicles per quarter. Breaking it down further we see three district rates of registrations:

  • 2009-2011 – 7.8 Registrations per quarter.
  • 2012-2013 – 28.5 Registrations per quarter.
  • 2014 Q1-Q3 – 5.3 Registrations per quarter.
  • 2014 Q3-2015 Q3 – 66.5 Registrations per quarter.

    With the release of Tesla Model S we see Tesla alone contribute 52.5 Registrations per quarter, all other makes and models only managing 14 per quarter since 2014. The best performing quarter is the fourth quarter of 2014 with 87 registrations 65 Tesla 22 others. The worst performing quarter since the release of the i-MiEV first quarter of 2014 with only 4.

    Insights

    Tesla has landed on our shores and has been welcomed with open arms with the fastest “selling” electric vehicle in NSW. Nissan/Mitsubishi was a steady seller until 2014. However Nissan have not released an updated model since 2012 in Australia, maybe it’s time for a new model LEAF that sell overseas. Mitsubishi also no longer have i-MiEV at dealerships, concentrating their efforts on the Outlander PHEV.

    In terms of charging standards we’ve seen Tesla enter with their own version of a type 2 socket which is Mennekes type 2 compatible. Where as everyone else has been type 1 J1772 it’s a bit hard to gauge a direction while 30% of pure electric vehicles are Tesla we don’t have accurate numbers for other type 1 J1772 plug-in vehicles like the Holden volt, Audi a3 e-tron Mitsubishi Outlander PHEV, BMW i3 REX, BMW i8 and the hybrid offerings from Porsche.

    Over the last year we’ve seen a significant growth in electric vehicles, installing a type 2 socket universal charging station to suit all vehicles at your office, shop, restaurant, church or sports field will further enhance the growth of electric vehicles.

    Source: Recharging NSW

    reproduced with permission

  • Porsche to invest $1 billion to launch battery-powered Mission E [VIDEO]

    Porsche will spend about 1 billion euros ($1.09 billion) on production facilities at its biggest plant to make its first-ever all-electric sports car.

    The Volkswagen-owned manufacturer will create more than 1,000 new jobs at its base in Zuffenhausen in Germany where a new paint shop and assembly line will be set up to build the battery-powered "Mission E" model, Porsche said on Friday.

    Porsche's investment in emissions-free drive technology reflects parent VW's growing commitment to increase its electric offerings as it struggles to overcome an emissions scandal.

    VW has said the next generation of its VW-badged flagship luxury saloon Phaeton will be electric and it plans to expand the so-called MQB modular production platform to focus more strongly on long-range plug-in hybrids and electric vehicles.

    Analysts have warned that VW's admission of rigging diesel emissions tests could cast a shadow over the diesel vehicle industry.

    Porsche's Mission E model, due to come to market by the end of the decade, will be more than 600 horsepower and have a range of over 500 km (310 mile).

    "We are sending a significant sign for the future of the brand," Chairman Wolfgang Porsche said after a meeting of the supervisory board which approved the investment.

    Some 700 million euros will be spent at Zuffenhausen where an existing engine plant and body shop will be extended, and the rest will be invested in Porsche's development center in Weissach, the carmaker said.

    Source: Porsche