Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001,

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FIGURE 41-1 Ford Motor Company has produced a number of demonstration fuel-cell vehicles based on the Ford Focus.
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Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 1 Figure 42-1 Ford Motor Company has produced a number of demonstration fuel-cell vehicles based on the Ford Focus.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 2 Figure 42-2 Hydrogen does not exist by itself in nature. Energy must be expended to separate it from other, more complex materials.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 3 Figure 42-3 The Mercedes-Benz B-Class fuel-cell car was introduced in 2005.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 4 Figure 42-4 The Toyota FCHV is based on the Highlander platform and uses much of Toyota’s Hybrid Synergy Drive (HSD) technology in its design.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 5 Figure 42-5 The polymer electrolyte membrane only allows H+ ions (protons) to pass through it. This means that electrons must follow the external circuit and pass through the load to perform work.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 6 Figure 42-6 A fuel-cell stack is made up of hundreds of individual cells connected in series.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 7 Figure 42-7 A direct methanol fuel cell uses a methanol/ water solution for fuel instead of hydrogen gas.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 8 Figure 42-8 A direct methanol fuel cell can be refueled similar to a gasoline-powered vehicle.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 9 Figure 42-9 Power train layout in a Honda FCX fuel-cell vehicle. Note the use of a humidifier behind the fuel-cell stack to maintain moisture levels in the membrane electrode assemblies.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 10 Figure The Honda FCX uses one large radiator for cooling the fuel cell, and two smaller ones on either side for cooling drivetrain components.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 11 Figure Space is limited at the front of the Toyota FCHV engine compartment, so an auxiliary heat exchanger is located under the vehicle to help cool the fuel-cell stack.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 12 Figure The secondary battery in a fuel-cell hybrid vehicle is made up of many individual cells connected in series, much like a fuel-cell stack.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 13 Figure The Honda ultracapacitor module and construction of the individual cells.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 14 Figure An ultracapacitor can be used in place of a high-voltage battery in a hybrid electric vehicle. This example is from the Honda FCX fuel-cell hybrid vehicle.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 15 Figure Drive motors in fuel-cell hybrid vehicles often use stator assemblies similar to ones found in Toyota hybrid electric vehicles. The rotor turns inside the stator and has permanent magnets on its outer circumference.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 16 Figure The General Motors “Skateboard” concept uses a fuel-cell propulsion system with wheel motors at all four corners.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 17 Figure The electric drive motor and transaxle assembly from a Toyota FCHV. Note the three orange cables, indicating that this motor is powered by high-voltage three-phase alternating current.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 18 Figure The power control unit (PCU) on a Honda FCX fuel-cell hybrid vehicle is located under the hood.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 19 Figure Toyota’s FCHV uses a power control unit that directs electrical energy flow between the fuel cell, battery, and drive motor.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 20 Figure This GM fuel-cell vehicle uses compressed hydrogen in three high-pressure storage tanks.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 21 Figure The Toyota FCHV uses high-pressure storage tanks that are rated at 350 bar. This is the equivalent of 5,000 pounds per square inch.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 22 Figure The high-pressure fitting used to refuel a fuel-cell hybrid vehicle.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 23 Figure Note that high-pressure hydrogen storage tanks must be replaced in 2020.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 24 Figure GM’s Hydrogen3 has a range of 249 miles when using liquid hydrogen.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 25 Figure Refueling a vehicle with liquid hydrogen.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 26 Figure Carbon deposits, such as these, are created by incomplete combustion of a hydrocarbon fuel.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 27 Figure Both diesel and conventional gasoline engines create exhaust emissions due to high peak temperatures created in the combustion chamber. The lower combustion temperatures during HCCI operation result in high efficiency with reduced emissions.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 28 Figure A typical electric vehicle charging station on the campus of a college in Southern California.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 29 Figure A conductive-type charging connector. This type of battery charging connector is sometimes called an AVCON connector, named for the manufacturer.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 30 Figure An inductive-type electric vehicle battery charger connector. This type of connector fits into a charging slot in the vehicle, but does not make electrical contact.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 31 Figure (a) The motor in a compact electric drag car. This 8-inch-diameter motor is controlled by an electronic controller that limits the voltage to 170 volts to prevent commutator flash-over yet provides up to 2,000 amperes. This results in an amazing 340,000 watts or 455 Hp. (b) The batteries used for the compact drag car include twenty 12-volt absorbed glass mat (AGM) batteries connected in series to provide 240 volts.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 32 Figure Wind power capacity by area. (Courtesy of U.S. Department of Energy)

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 33 Figure A typical wind generator that is used to generate electricity.

Diagnosis and Troubleshooting of Automotive Electrical, Electronic, and Computer Systems, 6/e - By James D. Halderman Copyright © 2012, 2010, 2005, 2001, 1997 Pearson Education, Inc., Upper Saddle River, NJ All rights reserved. 34 Figure The Hoover Dam in Nevada/Arizona is used to create electricity for use in the southwest United States.