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The 63 pages that link to Electric vehicle, each with the reason it gives.
Internal combustion engineCompared with: Electric drivetrains replace direct fuel combustion at the vehicle's wheels.
Electric motorRelated: Traction motors turn stored electrical energy into vehicle motion.
Climate change mitigationBroader topic: Electrifying road transport can reduce emissions, especially with low-carbon electricity.
Energy transitionBroader topic: Electric vehicles replace petroleum combustion in much of road transport.
AutomobileCompared with: It replaces combustion propulsion with electric drive, reshaping refueling and maintenance.
Automotive industryBroader topic: Electric vehicles are driving changes in powertrain design, battery sourcing, and factory investment.
BiofuelCompared with: It offers a transport-energy alternative that avoids burning liquid fuel onboard.
Direct currentRelated: Vehicle batteries store DC, which power electronics adapt for motors and auxiliaries.
Energy storageRelated: Its traction battery stores energy for transport and can sometimes return power to the grid.
Lead–acid batteryRelated: Lead–acid batteries powered early electric vehicles and still serve auxiliary functions in many modern vehicles.
LithiumRelated: Vehicle electrification is a major driver of demand for lithium-ion batteries.
Critical mineralsRelated: Batteries, motors, and power electronics give electric vehicles varied mineral needs.
GasolineCompared with: Electric vehicles replace gasoline combustion with electric propulsion.
BatteryRelated: Traction batteries determine an electric vehicle’s range, cost, and charging needs.
Catalytic converterCompared with: It has no tailpipe combustion emissions requiring an onboard converter.
Battery management systemRelated: Traction packs require monitoring across many cells under changing power and temperature demands.
Automotive engineeringBroader topic: Electric vehicles shift design priorities toward batteries, power electronics, and charging.
Power electronicsRelated: Traction inverters and onboard converters control motor power and manage battery charging.
Road transportRelated: Electrification can reduce tailpipe emissions while shifting energy and infrastructure demands elsewhere.
Elon MuskNarrower topic: Tesla helped bring battery-electric cars into the mass-market conversation under Musk's leadership.
ElectrificationNarrower topic: This broader category includes battery, hybrid, and fuel-cell vehicles.
Induction motorRelated: Some electric vehicles use induction motors for traction, including early Tesla models.
Transport emissionsCompared with: Electric vehicles eliminate tailpipe exhaust, but electricity and manufacturing still cause emissions.
Car DependencyCompared with: Electrification can reduce some vehicle emissions without resolving car dependence or its spatial costs.
Lunar roverNarrower topic: Battery-powered electric drive suits rovers that must operate without combustion air.
Petroleum industryCompared with: Electric vehicles reduce demand for petroleum in road transport.
Stranded assetRelated: Electric vehicles can reduce demand for oil infrastructure and accelerate the risk of related assets becoming uneconomic.
Virtual power plantRelated: Charging schedules, and sometimes battery discharge, can make vehicle fleets flexible grid resources.
Automotive aerodynamicsRelated: Reducing aerodynamic drag can extend an electric vehicle’s driving range.
Lithium miningRelated: Electric-vehicle adoption is a major driver of projected battery-lithium demand.
Mercedes-BenzRelated: Battery-electric models now form part of Mercedes-Benz’s product range.
Rare-earth magnetRelated: Traction motors commonly use rare-earth magnets for high power density.
Benz Patent-MotorwagenCompared with: Electric propulsion offered an alternative to the Motorwagen’s internal-combustion engine.
Lithium iron phosphate batteryRelated: LFP packs are widely used where durability, cost, and safety matter more than maximum range per unit mass.
Solid-state batteryRelated: Higher energy density could extend driving range or reduce battery mass.
DysprosiumRelated: Some traction motors use dysprosium-bearing permanent magnets to withstand operating heat.
Rechargeable batteryRelated: Traction batteries determine an electric vehicle’s range, cost, and charging needs.
Vehicle emissionsCompared with: It has no tailpipe emissions during electric driving, unlike combustion vehicles.
Automobile industry in the United StatesCompared with: The shift from internal-combustion engines to electric drivetrains is restructuring U.S. investment and competition.
BusbarRelated: Rigid busbars connect cells, modules, and power electronics in many traction batteries.
Passenger carCompared with: Battery-powered models replace the conventional engine and fuel system.
Electric batteryRelated: Traction batteries determine an electric vehicle’s range, power, cost, and charging needs.
Carl BenzCompared with: Electric vehicles offered a competing form of road transport during the automobile’s early development.
John B. GoodenoughRelated: Lithium-ion batteries made practical range and energy density possible for modern electric cars.
Akira YoshinoRelated: Lithium-ion batteries became a major energy-storage technology for modern electric vehicles.
All-terrain vehicleCompared with: Electric ATVs use motors and batteries instead of the gasoline engines common in older models.
Motor vehicleBroader topic: It is a motor-vehicle subtype distinguished by electric propulsion.
Private transportBroader topic: Electrification changes the energy source and emissions profile of private vehicles.
United Parcel ServiceRelated: UPS has adopted electric delivery vehicles to reduce tailpipe emissions and fuel use.
Yamaha Motor CompanyCompared with: Electric propulsion offers an alternative to the combustion engines long associated with Yamaha products.