Gangstar

Gangstar 3D on Iphone

Gameloft has stated that the rumour about releasing of GTA: Chinatown wars is a totally hoax, nothing but a false rumour, but now, the same action type of gameplay that definitely will be released on Iphone is Gameloft's Gangstar: West coast Hustle. [...]
Terminator

Terminator on Iphone

By the way, Gameloft president Michel Guillemot, Speaking to MTV Multiplayer, has unveiled that his studio will be releasing the official Terminator Salvation iPhone game on the same day of the movie's US release, May 22nd. [...]
Doom

Doom Resurrection on Iphone

Doom Resurrection is now on Iphone. Doom is very famous First Person Shooter games in consoles, and now this game is ready to take charge the mobile games industry [...]
ipod

Cheaper Iphone soon

Recently, Apple plans to introduce a cheaper version of its iPhone as soon as June 8, 2009, the Financial Times reports. The new device might be priced at either $99 or $149 [...]
Showing posts with label electric cars. Show all posts
Showing posts with label electric cars. Show all posts

Saturday, May 30, 2009

Consumer Energy Tax Incentives

What the American Recovery and Reinvestment Act Means to You

The American Recovery and Reinvestment Act of 2009 extended many consumer tax incentives originally introduced in the Energy Policy Act of 2005 (EPACT) and amended in the Emergency Economic Stabilization Act of 2008 (P.L. 110-343). Businesses, utilities, and governments are also eligible for tax credits.

See the summary of the energy tax incentives included in the Emergency Economic Stabilization Act of 2008.

About Tax Credits
A tax credit is generally more valuable than an equivalent tax deduction because a tax credit reduces tax dollar-for-dollar, while a deduction only removes a percentage of the tax that is owed. Consumers can itemize purchases on their federal income tax form, which will lower the total amount of tax they owe the government.

Fuel-efficient vehicles and energy-efficient appliances and products provide many benefits such as better gas mileage –meaning lower gasoline costs, fewer emissions, lower energy bills, increased indoor comfort, and reduced air pollution.

In addition to federal tax incentives, some consumers will also be eligible for utility or state rebates, as well as state tax incentives for energy-efficient homes, vehicles and equipment. Each state’s energy office web site may have more information on specific state tax information.

Below is a summary of many of the tax credits available to consumers. Please see the ENERGY STAR® page on Federal Tax Credits for Energy Efficiency for complete details.

Home Energy Efficiency Improvement Tax Credits
Consumers who purchase and install specific products, such as energy-efficient windows, insulation, doors, roofs, and heating and cooling equipment in existing homes can receive a tax credit for 30% of the cost, up to $1,500, for improvements "placed in service" starting January 1, 2009, through December 31, 2010. See EnergyStar.gov for a complete summary of energy efficiency tax credits available to consumers.

Residential Renewable Energy Tax Credits
Consumers who install solar energy systems (including solar water heating and solar electric systems), small wind systems, geothermal heat pumps, and residential fuel cell and microturbine systems can receive a 30% tax credit for systems placed in service before December 31, 2016; the previous tax credit cap no longer applies.

Automobile Tax Credits
Hybrid Gas-Electric and Alternative Fuel Vehicles
Individuals and businesses who buy or lease a new hybrid gas-electric car or truck are eligible for an income tax credit for vehicles “placed in service” starting January 1, 2006, and purchased on or before December 31, 2010. The amount of the credit depends on the fuel economy, the weight of the vehicle, and whether the tax credit has been or is being phased out. Hybrid vehicles that use less gasoline than the average vehicle of similar weight and that meet an emissions standard qualify for the credit.

This tax credit will be phased out for each manufacturer once that company has sold 60,000 eligible vehicles. At that point, the tax credit for each company’s vehicles will be gradually reduced over the course fifteen months. See the IRS's Summary of the Credit for Qualified Hybrid Vehicles for information on the status of specific vehicle eligibility.

Alternative-fuel vehicles, diesel vehicles with advanced lean-burn technologies, and fuel-cell vehicles are also eligible for tax credits. See the IRS summary of credits available for Alternative Motor Vehicles.

Plug-In Electric Vehicles
Plug-in electric vehicles also qualify for a tax credit starting January 1, 2010. The credit for passenger vehicles and light trucks ranges from $2,500 to $7,500, depending on batter capacity. The first 200,000 vehicles sold by each manufacturer are eligible for the full tax credit; the credit will then phase out over a year.

Plug-In Hybrid Conversion Kits
Hybrid vehicle owners who purchase a qualified plug-in hybrid conversion kit are eligible for a 10% credit, capped at $4,000, through 2011.

* Sources: ENERGYSTAR.gov and IRS.gov
** The IRS will determine final tax credit amounts. As more information becomes available, it will be posted on our website.

Wednesday, May 27, 2009

Electric Cars Lighting Up Again

By Chris Woodyard, USA TODAY
SANTA MONICA, Calif. — There are growing signs that the electric car, once on the road to extinction, may jolt back to life.

Several small, independent automakers are juicing up electric cars as an environmental statement amid renewed concern about global warming and dependence on imported oil.

The latest is a Silicon Valley start-up called Tesla Motors, which is taking orders for a $100,000 electric high-performance sports car that it hopes to deliver by next spring.

PHOTO GALLERY: Electric cars coming back

Tesla unveiled its roadster, billed as capable of a Ferrari-like zero to 60 mph in four seconds, last week in a converted aircraft hanger here. The cocktail-swilling crowd featured an odd coalition of environmentalists and sports car enthusiasts. Even California Gov. Arnold Schwarzenegger, a Hummer-loving Republican, took a spin.

Observers say the varied assortment of vehicles in the new electric-power generation — from racing-style cars to around-town jalopies — have a shot at success if they can create some excitement.

"There's no question" that success is within reach, says Dick Messer, director of the Petersen Automotive Museum in Los Angeles, which has chronicled the attempts at electric car production through the years. "Nobody has connected the dots."

The winner will be the company that ties together the finances, engineering, battery range and other assorted technical features to make a sustainable business, Messer adds.

Among the companies trying to lead the charge:

•Tesla. The car was designed in California but will be built by Lotus in Great Britain, which is basing it on its two-seat Elise model.

The company says its sophisticated lithium-ion battery will allow a range of 250 miles on a single charge and a top speed of 130 mph.

Tesla is largely bankrolled by PayPal co-founder Elon Musk, who says he kicked in about half the $60 million capitalization, so far. Musk, Tesla's chairman, also has a rocket company called SpaceX.

By producing expensive cars in a small quantity to start, the company hopes to bankroll future production of more-affordable, mass-produced electric cars. Musk compares next-generation electric cars with the personal computer industry in its infant stage in the early 1970s.

"Our goal is to become one of the great car companies of the 21st century," producing a car that's competitive against Porsche and Ferrari. And "by the way," Musk adds, "it's electric."

•Wrightspeed. Another Silicon-Valley-based start-up hopes to produce its own, $100,000 high-performance car within two years. It will have about a 200-mile range.

Ian Wright, who heads Wrightspeed, is a former computer-industry engineer and amateur racer. He says electric cars promise "extreme performance" through advanced electronics and software.

He says the new breed of electric cars could have three times the energy efficiency of gas-electric hybrids.

"You can build something that's seriously fast and a lot of fun to drive," he says. "We're building different cars aimed at different people."

•Zap. At the other end of the performance spectrum, specialized-auto importer Zap last month started selling a three-wheel electric "city car" imported from China that it says is capable of a top speed of 40 mph.

Priced at $9,000, the Xebra has a range of about 40 miles using a conventional lead-acid battery. So far, it's being delivered to five dealers on the West Coast and Florida.

Xebra seats four — and even has four doors — although it is classified by regulators as a motorcycle because of its three wheels. It comes in four colors, including a zebra-striped version.

•Tomberlin Group. An Augusta, Ga.-based company plans to sell three versions of electric cars.

The E-Merge E-2, a two-passenger car, is expected to be on sale early fall, followed by E-Merge E-4, a four passenger, and Anvil early next year. Prices will range from $5,000 for E-Merge E-2 to $8,000 for the four-seat Anvil.

Anvil's speed will be limited to 25 miles an hour, and because of that, it must be driven on streets with speed limits less than 35 mph. But "it handles like a Corvette," says Tomberlin Vice President David Hamilton. "It pulls a corner that will blow your mind."

Marketed as an "aggressive neighborhood vehicle," Anvil will go about 50 miles between charges. It will be sold through a network of about 450 dealers, Hamilton says.

The electric revival comes as an opinionated new documentary film, Who Killed the Electric Car?, has started playing in theaters in selected cities around the country.

The movie alleges that big automakers, oil companies and the government sank promising electric-car technology that was taking root in California in the mid-1990s.

At the time, the state was mandating that automakers make zero-pollution cars available for sale — and electricity was the only technology at the time that filled the bill.

The film singles out General Motors for special grief for having created a futuristic electric car that became a Hollywood enviro-darling despite its limited driving range and other drawbacks. When leases ran out, GM collected its Saturn EV1s and sent them to the crusher.

Fighting back, GM has bought a paid-search link on Google.com that shows up whenever the name of the movie or one its stars is typed into the search engine. The blog item says the EV1 was a commercial flop and that its engineering advances are being incorporated into GM's next wave of hybrid and other advanced vehicles.

Buyers were passionate, "but there were never enough of them," GM spokesman Dave Barthmuss said in an interview.

"They were forced to make too many tradeoffs" in convenience and range.

So far, major automakers are showing limited interest in a new round of electric cars. DaimlerChrysler has a fleet of vans converted to run on electricity.

Toyota's U.S. chief, Jim Press, says the Japanese automaker is "pursuing" a plug-in hybrid, which can be charged overnight to extend the range of the electric motor part of its gas/electric powertrain.

But Micky Bly, engineering director of GM's hybrid programs, says the lithium-ion batteries required by the plug-ins drive up costs, making them difficult to market.

For the most part, automakers are showing more interest in other gas-saving technologies, such as ethanol and fuel cells.

But guests at Tesla's unveiling were enthusiastic about the possibilities of a new round of electric vehicles, especially the high-performance ones.

"I love it," says Bradley Ross, a Los Angeles business manager who drives a turbo-charged Porsche. Going electric "is not a big compromise."

And Alexandra Paul, a former Baywatch star who has become an electric-car activist, says performance electrics will change minds, blowing the notion "to smithereens that an electric car is pokey or doesn't have range."

Thursday, May 21, 2009

Advantages and Disadvantages of Electric Cars

Electric cars and their advantages versus their disadvantages are an ever-increasing debate. In a country that is so dependent upon petroleum products and convenience it is hard to convince people that there are alternatives to the way we use transportation.

For instance do we really to travel at 75 to 80 miles per hour? If you owned a car that was powered by electricity that you converted yourself from a gas-powered car, you would still get to where you were going just at a bit of a slower speed maybe 50mph instead.

The trade offs to an electric car are, a bit of a slower speed but in turn no emissions, fewer moving parts to wear out, no muffler or fuel tank. You would also have a limited range of about 100 miles between charges. I really don't need to drive more than 100 miles per day unless I am going to go out of state and then I can always rent a vehicle.

There is also the added advantage of not having to get a tune up or a new muffler. A disadvantage is the cost for a new electric car it is at least in the twelve thousand dollar range. But, if you are even a bit handy you can convert a car using used parts for under one thousand dollars.

Don't forget the savings in fuel costs. Electricity is a cheaper fuel that gas so you will be driving miles for pennies instead of dollars. This alone would offset the expense of renting a car for longer trips on occasion.

These are just a few of the advantages and disadvantages of owning an electric vehicle.
http://www.squidoo.com/prosandconsofelectriccars has some more pros and cons and links to other information about converting your own electric car.

Article Source: http://EzineArticles.com/?expert=Tim_Partha

Wednesday, May 20, 2009

The Car that was GM’s Electric Car: EV1

I found a great article about GM and the electric car at this site...written by Ashley A. Icamen http://www.articlepoint.com/authors/50/Ashley-A-Icamen

ENJOY!!

Tuesday, April 28, 2009

How Electric Cars Work

How Electric Cars Work

by Brain, Marshall. "How Electric Cars Work." 27 March 2002. HowStuffWorks.com. 28 April 2009.

How Electric Cars Work
How Electric Cars Work
Play Video

Electric Car Image Gallery

subaru r1e
STAN HONDA/AFP/Getty Images
The Subaru R1e electric car can be charged overnight on an ordinary household current. It has a range of 50 miles and a top speed of 62 miles per hour. See more electric car pictures.

Electric cars are something that show up in the news all the time. There are several reasons for the continuing interest in these vehicles:

  • Electric cars create less pollution than gasoline-powered cars, so they are an environmentally friendly alternative to gasoline-powered vehicles (especially in cities).
  • Any news story about hybrid cars usually talks about electric cars as well.
  • Vehicles powered by fuel cells are electric cars, and fuel cells are getting a lot of attention right now in the news.



An electric car is a car powered by an electric motor rather than a gasoline engine.

From the outside, you would probably have no idea that a car is electric. In most cases, electric cars are created by converting a gasoline-powered car, and in that case it is impossible to tell. When you drive an electric car, often the only thing that clues you in to its true nature is the fact that it is nearly silent.

Under the hood, there are a lot of differences between gasoline and electric cars:

  • The gasoline engine is replaced by an electric motor.
  • The electric motor gets its power from a controller.
  • The controller gets its power from an array of rechargeable batteries.

A gasoline engine, with its fuel lines, exhaust pipes, coolant hoses and intake manifold, tends to look like a plumbing project. An electric car is definitely a wiring project.

In o­rder to get a feeling for how electric cars work in general, let's start by looking at a typical electric car to see how it comes together.


An Electric Car Example

The electric car that we will use for this discussion is shown here:

­Electric Car
A typical electric car, this one has some particularly snazzy decals. This vehicle is owned by Jon Mauney.

This electric vehicle began its life as a normal, gasoline-powered 1994 Geo Prism. Here are the modifications that turned it into an electric car:

  • The gasoline engine, along with the muffler, catalytic converter, tailpipe and gas tank, were all removed.
  • The clutch assembly was removed. The existing manual transmission was left in place, and it was pinned in second gear.
  • A new AC electric motor was bolted to the transmission with an adapter plate.
  • An electric controller was added to control the AC motor.

Inside an Electric Car
The 50-kW controller takes in 300 volts DC and produces
240 volts AC, three-phase. The box that says "U.S. Electricar" is the controller.

  • A battery tray was installed in the floor of the car.
  • Fifty 12-volt lead-acid batteries were placed in the battery tray (two sets of 25 to create 300 volts DC).
  • Electric motors were added to power things that used to get their power from the engine: the water pump, power steering pump, air conditioner.
  • A vacuum pump was added for the power brakes (which used engine vacuum when the car had an engine).

Electric Car Vacuum Pump
The vacuum pump is left of center.

  • The shifter for the manual transmission was replaced with a switch, disguised as an automatic transmission shifter, to control forward and reverse.

Electric Car Shifter
An automatic transmission shifter is used to select forward
and reverse. It contains a small switch, which sends a signal to the controller.

Inside an Electric Car
The water heater

  • A charger was added so that the batteries could be recharged. This particular car actually has two charging systems -- one from a normal 120-volt or 240-volt wall outlet, and the other from a magna-charge inductive charging paddle.

Electric Car Charger
The 120/240-volt charging system

Electric Car Charger
The Magna-Charge inductive paddle charging system

  • The gas gauge was replaced with a volt meter.

Inside an Electric Car
The "gas gauge" in an electric car is either a simple volt meter or a more sophisticated computer that tracks the flow of amps to and from the battery pack.


Everything else about the car is stock. When you get in to drive the car, you put the key in the ignition and turn it to the "on" position to turn the car on. You shift into "Drive" with the shifter, push on the accelerator pedal and go. It performs like a normal gasoline car. Here are some interesting statistics:

  • The range of this car is about 50 miles (80 km).
  • The 0-to-60 mph time is about 15 seconds.
  • It takes about 12 kilowatt-hours of electricity to charge the car after a 50-mile trip.
  • The batteries weigh about 1,100 pounds (500 kg).
  • The batteries last three to four years.

­To compare the cost per mile of gasoline cars to this electric car, here's an example. Electricity in North Carolina is about 8 cents per kilowatt-hour right now (4 cents if you use time-of-use billing and recharge at night). That means that for a full recharge, it costs $1 (or 50 cents with time-of-use billing). The cost per mile is therefore 2 cents per mile, or 1 cent with time-of-use. If gasoline costs $1.20 per gallon and a car gets 30 miles to the gallon, then the cost per mile is 4 cents per mile for gasoline.

Clearly, the "fuel" for electric vehicles costs a lot less per mile than it does for gasoline vehicles. And for many, the 50-mile range is not a limitation -- the average person living in a city or suburb seldom drives more than 30 or 40 miles per day.

To be completely fair, however, we should also include the cost of battery replacement. Batteries are the weak link in electric cars at the moment. Battery replacement for this car runs about $2,000. The batteries will last 20,000 miles or so, for about 10 cents per mile. You can see why there is so much excitement around fuel cells right now -- fuel cells solve the battery problem (more details on fuel cells later in the article).

Inside an Electric Car

The heart of an electric car is the combination of:

electric car
A simple DC controller connected to the batteries and the DC motor. If the driver floors the accelerator pedal, the controller delivers the full 96 volts from the batteries to the motor. If the driver take his/her foot off the accelerator, the controller delivers zero volts to the motor. For any setting in between, the controller "chops" the 96 volts thousands of times per second to create an average voltage somewhere between 0 and 96 volts.


The controller takes power from the batteries and delivers it to the motor. The accelerator pedal hooks to a pair of potentiometers (variable resistors), and these potentiometers provide the signal that tells the controller how much power it is supposed to deliver. The controller can deliver zero power (when the car is stopped), full power (when the driver floors the accelerator pedal), or any power level in between.

The controller normally dominates the scene when you open the hood, as you can see here:

electric car
The 300-volt, 50-kilowatt controller for this electric car is the box marked "U.S. Electricar."

In this car, the controller takes in 300 volts DC from the battery pack. It converts it into a maximum of 240 volts AC, three-phase, to send to the motor. It does this using very large transistors that rapidly turn the batteries' voltage on and off to create a sine wave.

When you push on the gas pedal, a cable from the pedal connects to these two potentiometers:

Electric Car
The potentiometers hook to the gas pedal and send a signal to the controller.

The signal from the potentiometers tells the controller how much power to deliver to the electric car's motor. There are two potentiometers for safety's sake. The controller reads both potentiometers and makes sure that their signals are equal. If they are not, then the controller does not operate. This arrangement guards against a situation where a potentiometer fails in the full-on position.

Electric Car Battery
Heavy cables (on the left) connect the battery pack to the controller. In the middle is a very large on/off switch. The bundle of small wires on the right carries signals from thermometers located between the batteries, as well as power for fans that keep the batteries cool and ventilated.

Electric car wires
The heavy wires entering and leaving the controller


The controller's job in a DC electric car is easy to understand. Let's assume that the battery pack contains 12 12-volt batteries, wired in series to create 144 volts. The controller takes in 144 volts DC, and delivers it to the motor in a controlled way.

The very simplest DC controller would be a big on/off switch wired to the accelerator pedal. When you push the pedal, it would turn the switch on, and when you take your foot off the pedal, it would turn it off. As the driver, you would have to push and release the accelerator to pulse the motor on and off to maintain a given speed.

Obviously, that sort of on/off approach would work but it would be a pain to drive, so the controller does the pulsing for you. The controller reads the setting of the accelerator pedal from the potentiometers and regulates the power accordingly. Let's say that you have the accelerator pushed halfway down. The controller reads that setting from the potentiometer and rapidly switches the power to the motor on and off so that it is on half the time and off half the time. If you have the accelerator pedal 25 percent of the way down, the controller pulses the power so it is on 25 percent of the time and off 75 percent of the time.

Most controllers pulse the power more than 15,000 times per second, in order to keep the pulsation outside the range of human hearing. The pulsed current causes the motor housing to vibrate at that frequency, so by pulsing at more than 15,000 cycles per second, the controller and motor are silent to human ears.

electric car motor
An AC controller hooks to an AC motor. Using six sets of power transistors, the controller takes in 300 volts DC and produces 240 volts AC, 3-phase. See How the Power Grid Works for a discussion of 3-phase power. The controller additionally provides a charging system for the batteries, and a DC-to-DC converter to recharge the 12-volt accessory battery.


In an AC controller, the job is a little more complicated, but it is the same idea. The controller creates three pseudo-sine waves. It does this by taking the DC voltage from the batteries and pulsing it on and off. In an AC controller, there is the additional need to reverse the polarity of the voltage 60 times a second. Therefore, you actually need six sets of transistors in an AC controller, while you need only one set in a DC controller. In the AC controller, for each phase you need one set of transistors to pulse the voltage and another set to reverse the polarity. You replicate that three times for the three phases -- six total sets of transistors.

Most DC controllers used in electric cars come from the electric forklift industry. The Hughes AC controller seen in the photo above is the same sort of AC controller used in the GM/Saturn EV-1 electric vehicle. It can deliver a maximum of 50,000 watts to the motor.


Electric-car Motors and Batteries

Electric cars can use AC or DC motors:

  • If the motor is a DC motor, then it may run on anything from 96 to 192 volts. Many of the DC motors used in electric cars come from the electric forklift industry.

  • If it is an AC motor, then it probably is a three-phase AC motor running at 240 volts AC with a 300 volt battery pack.

DC installations tend to be simpler and less expensive. A typical motor will be in the 20,000-watt to 30,000-watt range. A typical controller will be in the 40,000-watt to 60,000-watt range (for example, a 96-volt controller will deliver a maximum of 400 or 600 amps). DC motors have the nice feature that you can overdrive them (up to a factor of 10-to-1) for short periods of time. That is, a 20,000-watt motor will accept 100,000 watts for a short period of time and deliver 5 times its rated horsepower. This is great for short bursts of acceleration. The only limitation is heat build-up in the motor. Too much overdriving and the motor heats up to the point where it self-destructs.

AC installations allow the use of almost any industrial three-phase AC motor, and that can make finding a motor with a specific size, shape or power rating easier. AC motors and controllers often have a regen feature. During braking, the motor turns into a generator and delivers power back to the batteries.

Right now, the weak link in any electric car is the batteries. There are at least six significant problems with current lead-acid battery technology:

  • They are heavy (a typical lead-acid battery pack weighs 1,000 pounds or more).
  • They are bulky (the car we are examining here has 50 lead-acid batteries, each measuring roughly 6" x 8" by 6").
  • They have a limited capacity (a typical lead-acid battery pack might hold 12 to 15 kilowatt-hours of electricity, giving a car a range of only 50 miles or so).
  • They are slow to charge (typical recharge times for a lead-acid pack range between four to 10 hours for full charge, depending on the battery technology and the charger).
  • They have a short life (three to four years, perhaps 200 full charge/discharge cycles).
  • They are expensive (perhaps $2,000 for the battery pack shown in the sample car).

In the next section we'll look at more problems with battery technology.

The EV Challenge
­ The EV Challenge (www.evchallenge.org) is an innovative educational program for middle and high school students that centers around building electric-powered cars:
  • Middle school students build and compete model solar-powered cars.
  • High school students convert full-sized gasoline-powered vehicles into electric vehicles. It's a complete conversion project, as described in the previous section of this article.

Students learn about electric technology throughout the year and then come together for a two-day finale. In addition to building the electric vehicle, high school students compete in autocross (speed and agility) and range events, vehicle design, oral presentations, troubleshooting, Web site design, and community involvement.

The EV Challenge gets a majority of its funding from corporate sponsors and government organizations, including Advanced Energy Corporation, CP&L/Progress Energy, Duke Power, Dominion Virginia Power, the NC Energy Office, the NC Department of Environment and Natural Resources, and the EPA.

Jon Mauney (whose car is featured at the beginning of this article) is on the steering committee for EV Challenge. According to Jon, CP&L started the EV Challenge program in North Carolina. The program then spread to South Carolina, Florida, Virginia, West Virginia, and Georgia, and is now spreading nationwide. Thousands of students have participated in the EV Challenge.

If you or your school would like more information on the EV Challenge program, please see www.evchallenge.org.

­

Battery Problems

­ Y­ou can replace lead-acid batteries with NiMH batteries. The range of the car will double and the batteries will last 10 years (thousands of charge/discharge cycles), but the cost of the batteries today is 10 to 15 times greater than lead-acid. In other words, an NiMH battery pack will cost $20,000 to $30,000 (today) instead of $2,000. Prices for advanced batteries fall as they become mainstream, so over the next several years it is likely that NiMH and lithium-ion battery packs will become competitive with lead-acid battery prices. Electric cars will have significantly better range at that point.

When you look at the problems associated with batteries, you gain a different perspective on gasoline. Two gallons of gasoline, which weighs 15 pounds, costs $3.00 and takes 30 seconds to pour into the tank, is equivalent to 1,000 pounds of lead-acid batteries that cost $2,000 and take four hours to recharge.

The problems with battery technology explain why there is so much excitement around fuel cells today. Compared to batteries, fuel cells will be smaller, much lighter and instantly rechargeable. When powered by pure hydrogen, fuel cells have none of the environmental problems associated with gasoline. It is very likely that the car of the future will be an electric car that gets its electricity from a fuel cell. There is still a lot of research and development that will have to occur, however, before inexpensive, reliable fuel cells can power automobiles.

Just about any electric car has one other battery on board. This is the normal 12-volt lead-acid battery that every car has. The 12-volt battery provides power for accessories -- things like headlights, radios, fans, computers, air bags, wipers, power windows and instruments inside the car. Since all of these devices are readily available and standardized at 12 volts, it makes sense from an economic standpoint for an electric car to use them.

Therefore, an electric car has a normal 12-volt lead-acid battery to power all of the accessories. To keep the battery charged, an electric car needs a DC-to-DC converter. This converter takes in the DC power from the main battery array (at, for example, 300 volts DC) and converts it down to 12 volts to recharge the accessory battery. When the car is on, the accessories get their power from the DC-to-DC converter. When the car is off, they get their power from the 12-volt battery as in any gasoline-powered vehicle.

The DC-to-DC converter is normally a separate box under the hood, but sometimes this box is built into the controller.

Of course, any car that uses batteries needs a way to charge them.


Charging an Electric Car

Any electric car that uses batteries needs a charging system to recharge the batteries. The charging system has two goals:

  • To pump electricity into the batteries as quickly as the batteries will allow
  • To monitor the batteries and avoid damaging them during the charging process
Charging Current
When lead-acid batteries are at a low state of charge, nearly all the charging current is absorbed by the chemical reaction. Once the state of charge reaches a certain point, at about 80 percent of capacity, more and more energy goes into heat and electrolysis of the water. The resulting bubbling of electrolyte is informally called "boiling." For the charging system to minimize the boiling, the charging current must cut back for the last 20 percent of the charging process.

The most sophisticated charging systems monitor battery voltage, current flow and battery temperature to minimize charging time. The charger sends as much current as it can without raising battery temperature too much. Less sophisticated chargers might monitor voltage or amperage only and make certain assumptions about average battery characteristics. A charger like this might apply maximum current to the batteries up through 80 percent of their capacity, and then cut the current back to some preset level for the final 20 percent to avoid overheating the batteries.

Jon Mauney's electric car actually has two different charging systems. One system accepts 120-volt or 240-volt power from a normal electrical outlet. The other is the Magna-Charge inductive charging system popularized by the GM/Saturn EV-1 vehicle. Let's look at each of these systems separately.

The normal household charging system has the advantage of convenience -- anywhere you can find an outlet, you can recharge. The disadvantage is charging time.

A normal household 120-volt outlet typically has a 15-amp circuit breaker, meaning that the maximum amount of energy that the car can consume is approximately 1,500 watts, or 1.5 kilowatt-hours per hour. Since the battery pack in Jon's car normally needs 12 to 15 kilowatt-hours for a full recharge, it can take 10 to 12 hours to fully charge the vehicle using this technique.

By using a 240-volt circuit (such as the outlet for an electric dryer), the car might be able to receive 240 volts at 30 amps, or 6.6 kilowatt-hours per hour. This arrangement allows significantly faster charging, and can fully recharge the battery pack in four to five hours.

In Jon's car, the gas filler spout has been removed and replaced by a charging plug. Simply plugging into the wall with a heavy-duty extension cord starts the charging process.

electric car
2008 HowStuffWorks
Opening the gas filler door reveals the charging plug.

electric car
2008 HowStuffWorks
Close-up of the plug

electric car
Photo courtesy Jon Mauney
Plug the car in anywhere to recharge.

In this car, the charger is built into the controller. In most home-brew cars, the charger is a separate box located under the hood, or could even be a free-standing unit that is separate from the car.

­