available USEUKR

2024 Hyundai Ioniq 5

Long Range AWD · AWD · SUV

Range info

260mi

EPA

10–80% info

18min

10.1 mi/min

Price info

$50,000

$192/mi of range

Architecture info

800V

CCS1

Full specification

Tap any row for a plain-English explanation of what it means.

Model year 2024

The model year the carmaker gives the car, which isn't necessarily when it was built or sold.

This car

We also list the Hyundai Ioniq 5 for the 2025, 2026 and 2027 model years. Specs can differ between years, so check you're looking at the right one.

Carmakers usually start selling a new model year months before that calendar year begins, so a 2026 car can be on sale in the middle of 2025.

Specs can change between model years even when the car looks the same: a new battery supplier, a different charge port, updated driver assistance or a new price. That's why each model year has its own row here.

When you shop, check that the model year you're offered matches the one you researched. It matters most for used cars, where an older year may have less range, slower charging or a different plug.

All specs explained in the spec guide
Trim Long Range AWD

The specific version of a model: its battery, motors, wheels and equipment.

This car

The 260 miles shown is this trim's best EPA figure, on its most efficient wheel and tire option. Larger wheels, where offered, usually take 5–10% off that.

Most models come in several trims: for example, a cheaper single-motor version with a smaller battery and a pricier dual-motor version with a bigger one. Range, charging speed and price can differ a lot between trims of the same car, so compare trims, not just models.

We list each trim once, under the carmaker's own name for it. Options that don't make a different car (wheel and tire choices, a faster home-charging module, a third seat row, appearance and performance packs) are folded into the trim rather than listed as cars of their own.

The range shown is the trim's best official figure, which usually means its smallest wheels. That's the number carmakers advertise. Bigger wheels look sportier but usually cost range (commonly around 5–10%) because they're heavier and less aerodynamic, so if you want the larger wheels, expect a little less than the figure listed.

All specs explained in the spec guide
Drivetrain AWD

Which wheels are driven, and by how many motors.

This car

All-wheel drive: power goes to all four wheels, almost always from two motors (one per axle). You get better grip in rain and snow and quicker acceleration, usually for a higher price and a little less range than the single-motor version.

Electric motors are compact, so many EVs put one on each axle to get all-wheel drive, and some performance models use three or four. More motors generally means more grip and faster acceleration, and also more weight, a higher price and usually a little less range.

For most people it comes down to weather and budget. A single motor (rear- or front-wheel drive) is the efficient, affordable default. All-wheel drive is worth considering if you often drive in snow or on slippery roads, though good winter tires matter more than the number of driven wheels.

On EVs, AWD and Dual-Motor almost always mean the same thing: one motor driving the front wheels and one driving the rear.

Drivetrains compared Swipe the table sideways to see it all
TypeMotorsGrip in rain and snowRangeAccelerationPrice
AWD All-wheel driveThis car Usually 2, one per axleVery goodUsually a little less than single-motorQuickHigher
RWD Rear-wheel drive 1, at the rearFine with good tires; the weakest hereOften the longest in its model lineAdequate to quickLowest in its model line
FWD Front-wheel drive 1, at the frontBetter than rear-wheel driveLongAdequateLow
Dual-Motor Two motors, all-wheel drive 2, one per axleVery goodUsually a little less than single-motorQuickHigher
Tri-Motor Three motors 3: one front, two rearExcellentLower. Built for speedVery fastHigh
Quad-Motor Four motors 4, one per wheelExcellent, even off-roadLowerVery fastHighest

Good winter tires make a bigger difference in snow than the number of driven wheels.

All specs explained in the spec guide
Range 260 mi (EPA)

How far the car can go on a full battery, measured on a standard test.

This car

260 miles on the EPA test: shorter than 75% of the 657 EPA-rated trims we list (typical: 293 mi).

At the US average of about 37 miles a day, a full charge covers roughly 7 days of typical driving.

On a road trip you'd usually drive between about 10% and 80% charge: roughly 180 miles between fast-charging stops on paper, less at highway speed.

Rough real-world expectations: about 195–235 miles at a steady 70–75 mph in mild weather, and about 155–210 miles below freezing with the heater on.

Range is measured on a standard laboratory test so that different cars can be compared fairly. It's the most useful single number when comparing EVs, but it's a test result, not a promise, and which test was used matters a lot.

Check the label next to the number. EPA is the US test and the strictest. WLTP (Europe) usually reads about 10–20% higher than EPA for the same car, and CLTC (China) about 20–30% higher. Never compare an EPA figure directly with a WLTP or CLTC one.

Real driving is different. Steady highway driving at 70–75 mph usually gives less than the EPA figure, often 10–25% less. Cold hurts most: below freezing, heating the cabin and the battery can cut range by roughly 20–40%. Big wheels, roof racks, towing, heavy loads and hills reduce it too. Gentle city driving, where the car recovers energy as it slows down, can match or even beat the rating.

How much do you need? The average American drives about 37 miles a day, and most EV owners charge at home overnight, so daily range is rarely a problem. Range matters most on road trips. There you'll usually drive between about 10% and 80% charge (the fastest part of the battery to refill), so the useful distance between fast-charging stops is roughly 70% of the rated range, and less at highway speed.

The three range tests Swipe the table sideways to see it all
Feature EPA US Environmental Protection AgencyThis car WLTP Worldwide Harmonised Light Vehicles Test Procedure CLTC China Light-Duty Vehicle Test Cycle
Used inUnited States.Europe, the UK and many other countries.China.
How it's testedCity and highway runs, then adjusted down to reflect real driving.A single mixed run at moderate speeds.Mostly slow, stop-start driving with gentle acceleration.
Compared with EPAThe reference.Usually 10–20% higher.Usually 20–30% higher.
Rough EPA equivalentThe same number.Multiply by about 0.85.Multiply by about 0.75.
How realisticThe most realistic.Somewhat optimistic.The most optimistic.

Conversions are rough rules of thumb from cars rated on more than one test; the real gap varies from car to car.

All specs explained in the spec guide
Efficiency 99 MPGe

How far the car goes on a given amount of energy: the EV version of miles per gallon.

This car

99 MPGe works out to about 34 kWh per 100 miles, or 2.9 miles per kWh.

That's more efficient than 59% of the 655 EPA-rated trims we list (typical: 94 MPGe).

Energy for 100 miles costs about $5.79 charging at home (17¢ per kWh), or roughly $14–20 at public fast chargers (40–60¢ per kWh).

That makes it about 3.5 times as energy-efficient as a gas car that gets 28 mpg.

MPGe stands for miles per gallon equivalent. The US EPA counts 33.7 kWh of electricity as one gallon of gasoline, because that's how much energy a gallon holds. A car rated at 100 MPGe travels 100 miles on 33.7 kWh.

Higher is better. An efficient EV costs less to run, adds more miles for every minute it charges, and needs a smaller, lighter, cheaper battery for the same range. The EVs we list run from under 50 MPGe for the heaviest trucks to around 140 for the most aerodynamic sedans.

Two handy conversions: kWh per 100 miles = 3,370 ÷ MPGe, and miles per kWh = MPGe ÷ 33.7. So 120 MPGe is about 28 kWh per 100 miles, or 3.6 miles per kWh. Your electricity bill is in kWh, so this is what sets your running cost.

The EPA measures the electricity drawn from the wall, so the energy lost while charging is already included. It reflects what you actually pay for.

EVs use far less energy than gas cars: a gas car that gets 28 mpg uses about four times as much energy to travel as far as a 115-MPGe EV.

MPGe only exists for cars tested by the EPA, so rows using WLTP or CLTC don't have one.

All specs explained in the spec guide
Charge 10–80% 18 min

Minutes to charge from 10% to 80% at a DC fast charger: the standard road-trip charging figure.

This car

18 minutes from 10% to 80%: quicker than 86% of the 662 trims we list (typical: 30 min).

That stop adds about 180 miles of EPA-rated range.

This is how long a typical road-trip charging stop takes: you arrive with about 10% left and leave with 80%. Carmakers quote this window because charging is fastest in the middle of the battery and slows sharply above about 80%.

It assumes ideal conditions: a DC fast charger powerful enough for the car, a battery at the right temperature, and a charger that isn't sharing its power with the car next to you. In cold weather it can take much longer unless the battery is warmed first. Most EVs do this automatically when you navigate to a fast charger using the car's built-in maps.

It has nothing to do with charging at home. Home charging is much slower (hours rather than minutes), but it happens while you sleep. Fast charging is for road trips, and it often costs two to three times as much per kWh.

As a rough guide, under 20 minutes is very quick, 20–30 minutes is good and over 40 minutes is slow. But minutes alone don't tell the whole story: a car that fills a small battery quickly may add fewer miles than a slower car with a big one. Miles per charge-minute combines both.

All specs explained in the spec guide
Charge 80–100% —

Minutes to fill the last 20% at a fast charger: the slow part.

This car

The maker doesn't publish this figure for this car. Expect the last 20% to be slow: often about as long as the whole 10–80% session.

Charging slows sharply once a battery is about 80% full. As the cells fill up, the car deliberately cuts the charging power to protect them from heat and wear, a bit like filling a glass slowly near the top so it doesn't overflow.

That's why the last 20% often takes about as long as the whole 10–80% stretch. On a road trip it's usually quicker to leave at 80% and stop again later than to wait for 100%.

Charge to 100% when you really need the range, such as before a long trip, or routinely if the car has an LFP battery and the maker recommends it. For everyday driving, most carmakers suggest a limit of about 80–90% for nickel-based batteries (NMC, NCA and NCMA).

Carmakers rarely publish this figure, so it's often blank here.

All specs explained in the spec guide
Miles per charge-minute 10.1 mi/min

Miles of range added, on average, for every minute at a fast charger.

This car

10.1 miles of range per minute of fast charging: faster than 83% of the 655 EPA-rated trims we list (typical: 6.8 mi/min).

At that rate a 10-minute stop adds about 100 miles. It reaches 80% after 18 minutes.

We work this out as 70% of the rated range (the distance a 10–80% charge adds) divided by the 10–80% charging time. It combines charging power and efficiency into one number that answers the real road-trip question: how long will I be stopped?

Higher is better. At 10 miles per minute, a 15-minute stop adds about 150 miles; at 5 miles per minute, the same stop adds about 75.

It's an average across the whole 10–80% session. Charging is fastest when the battery is low and slows toward 80%, so a short stop from a low battery can add a bit more than this suggests.

Because it's based on rated range, only compare it between cars rated on the same test.

All specs explained in the spec guide
Battery chemistry NMC

What the battery cells are made of, which shapes range, lifespan, cold-weather behavior, safety and price.

This car

NMC (nickel manganese cobalt) is the most common EV chemistry: a good balance of range, lifespan, cold-weather performance and cost. Because it's nickel-rich, most makers recommend a daily charging limit of about 80–90% and saving 100% for long trips.

Every battery on this site is lithium-ion. What differs is the cathode, the positive side of each cell, and the metals in it give each chemistry its name.

The big trade-off is between the nickel-rich chemistries (NMC, NCA and NCMA), which pack more energy into less weight for more range, and LFP, which is cheaper, lasts longer and tolerates heat better, but is heavier for the same range and weaker in the cold.

Numbers such as 811 in "NMC 811" give the metal ratio: 8 parts nickel to 1 part manganese to 1 part cobalt. More nickel means more energy and less cobalt (an expensive metal), but a cell that needs more careful temperature control.

4680 and 4695 describe a cell's size, not its chemistry: cylinders 46 mm wide and 80 or 95 mm tall. Bigger cells mean fewer parts and a simpler, cheaper battery. The chemistry inside is usually nickel-rich.

Solid-state batteries replace the liquid inside the cell with a solid material, promising more range and better safety. As of 2026 they aren't in mass-produced cars yet.

Every chemistry here is used safely in cars on sale today: each car's cooling and battery-management system is designed around the chemistry it uses. Batteries also wear more slowly than many people expect, and most EV batteries sold in the US come with a warranty of at least 8 years or 100,000 miles.

How the battery chemistries compare Swipe the table sideways to see it all
Feature NMC Nickel manganese cobaltThis car LFP Lithium iron phosphate NCA Nickel cobalt aluminum NCMA Nickel cobalt manganese aluminum
Energy densityHigh: about 180–280 Wh/kg. The more nickel, the higher it goes.Lowest: about 150–205 Wh/kg per cell. Needs a bigger, heavier battery for the same range.Very high: about 230–300 Wh/kg.Very high: about 230–290 Wh/kg.
Heat tolerance (safety)Good with proper cooling. High-nickel versions need more care.Best. Very resistant to overheating and thermal runaway.Lowest of these. Relies on strict cooling and monitoring.Good. The aluminum helps keep a high-nickel cell stable.
LifespanAbout 1,500–2,500 full charge cycles.Longest: often 3,000+ full charge cycles.About 1,000–2,000 full charge cycles.About 1,500–2,500 full charge cycles.
Cold weatherGood. Handles cold better than LFP.Weakest. Loses more range, and charges slowly until the battery warms up.Good. Handles cold better than LFP.Good. Handles cold better than LFP.
CostHigher. Nickel and cobalt are expensive metals.Lowest. No nickel or cobalt.Higher, similar to high-nickel NMC.Higher, though it uses very little cobalt.
Daily charging limitAbout 80–90% for daily driving; 100% before long trips.100% is fine, and many makers recommend it.About 80–90% for daily driving; 100% before long trips.About 80–90% for daily driving; 100% before long trips.
Where you'll find itMost EVs sold in the US and Europe.Standard-range trims and many Chinese-built EVs.Mainly Teslas with Panasonic-made cells.GM's Ultium-based EVs (Chevrolet, Cadillac, GMC).

Energy density is measured per cell; a finished battery weighs more once cooling, wiring and casing are added. A cycle is one full 0–100% charge, so even 1,500 cycles on a 300-mile car is around 450,000 miles, far longer than most people keep a car. Figures are typical for cars on sale in 2024–2026 and vary by maker.

All specs explained in the spec guide
Battery capacity 77.4 kWh

How much energy the battery holds: the EV version of fuel-tank size.

This car

77.4 kWh of usable energy: smaller than 77% of the 635 batteries we list (typical: 92 kWh).

With 260 miles of EPA range, that's about 3.4 miles per kWh of battery.

On a typical 240-volt home charger (7.7–11.5 kW), charging from nearly empty to full takes roughly 7–11 hours. Most nights you'd only top up what you used that day.

That's about as much energy as an average US home uses in 2.6 days.

Capacity is measured in kilowatt-hours (kWh), the same unit as your electricity bill. One kWh is the energy a 1,000-watt appliance uses in an hour, roughly a microwave running for an hour.

We list usable capacity: the energy the car actually lets you use. Carmakers keep a small hidden reserve to protect the battery, so the "gross" figure some brochures quote is a few kWh higher.

Bigger isn't automatically better. A bigger battery gives more range, but it's heavier, more expensive and takes longer to fill. Range is capacity multiplied by efficiency, so an efficient car with a mid-size battery can go as far as a less efficient one with a huge battery.

Charging at home: a typical 240-volt home charger (about 7–11 kW) adds very roughly 20–45 miles of range per hour and refills most EVs overnight. A regular 120-volt household outlet adds only about 3–5 miles per hour: enough if you drive little, too slow for most people.

Batteries slowly lose capacity with age, on average around 1–2% a year. Heat, frequent fast charging and sitting at 100% for long periods speed this up.

All specs explained in the spec guide
Pack architecture 800V

The battery's working voltage, which mainly affects how fast the car can charge.

This car

800-volt batteries are built for faster charging. With twice the voltage the car can take very high power (often 250–350 kW) with less heat, so charging stays fast for longer. The catch is older chargers designed around 400 volts, including many Tesla Superchargers, where it may charge well below its best.

Charging power is voltage multiplied by current. Double the voltage and the car can take the same power with half the current, which means less heat, thinner and lighter cables and, the part you notice, fast charging that stays fast for longer.

Most EVs use a 400-volt system, which is mature and cheaper. 800-volt systems (and Lucid's, which runs at over 900 volts) are found on cars built for very fast charging and can often take 250–350 kW at the right charger.

The catch: many older fast chargers, including a lot of Tesla Superchargers, are built around 400 volts. An 800-volt car has to convert the voltage there and may charge well below its best. The 10–80% charging time is the number that shows the real result.

Voltage makes little difference to range or to how the car drives; it's a charging feature.

400-volt vs 800-volt vs 900-volt Swipe the table sideways to see it all
Feature 800V 800-voltThis car 400V 400-volt 900V 900-volt class
Typical peak fast chargingAbout 230–350 kWAbout 150–250 kWAbout 300–400 kW
On older 400-volt chargersOften much slower: the car has to convert the voltage.Full speed.Often much slower, as with 800-volt.
Heat while chargingHalf the current for the same power: less heat, lighter cables.More current, so more heat to manage.Like 800-volt.
CostHigher. The electronics cost more.Lowest. The industry standard.Higher.
Where you'll find itHyundai, Kia and Genesis E-GMP models, Porsche, Audi e-tron GT and GM's big trucks.Most EVs, including most Teslas, Fords and Volkswagens.Lucid.

Voltage makes little difference to range or to how the car drives; it's about charging. The 10–80% charging time shows the real result.

All specs explained in the spec guide
Charge port CCS1

The socket on the car, which decides which chargers you can use without an adapter.

This car

CCS1 is the larger plug most non-Tesla cars in North America used before the switch to NACS. It plugs straight into Electrify America, EVgo and most other US fast chargers, and into standard home chargers. Tesla Superchargers need the carmaker's approved adapter.

North America has two fast-charging plugs. NACS (now standardized as SAE J3400) is the compact plug Tesla designed, and most carmakers are switching to it, starting with 2025 and 2026 models. CCS1 is the larger plug most other brands used before that. China uses its own GB/T standard, and the Nissan Leaf used Japan's older CHAdeMO plug until 2026.

Adapters bridge the gap: a CCS1 car can use Tesla Superchargers with the carmaker's approved adapter, and an NACS car can use CCS1 chargers with an adapter too. Some charging companies are adding both cables at the same station.

At home the plug matters less. CCS1 cars accept standard J1772 home chargers directly, and NACS cars can use them with a small adapter, so nearly any home charger will do.

We list the plug fitted to the US version of each car. In Europe the same car usually has a CCS2 socket.

The charge ports you'll see here Swipe the table sideways to see it all
Feature CCS1 Combined Charging System, Type 1This car NACS North American Charging Standard GB/T China's national standard CHAdeMO Japan's older fast-charging standard
Also known asCCS, or "Combo 1"SAE J3400, or the "Tesla plug"China's GB/T 20234 standardNamed after the Japanese group that created it
Used inNorth America. The previous standard for non-Tesla cars.North America. The new standard.Mainland China.Japan, and older Nissan Leafs in the US. Being phased out.
Tesla SuperchargersWith the carmaker's approved adapter.Plugs in directly.No.No, and no adapter.
Other US fast chargersPlugs in directly.Where the station has an NACS cable, or with an adapter.No.Only stations that still have a CHAdeMO cable, a shrinking number.
Home chargingStandard J1772 home chargers plug straight in.Tesla chargers directly; standard J1772 chargers with an adapter.Chinese home chargers.Standard J1772 home chargers, through a separate socket.
The plugLarge and heavier.Small and light.Separate sockets for home and fast charging.Large; a separate socket from the home-charging one.

We list the plug fitted to the US version of each car. European versions use a different plug, CCS2.

All specs explained in the spec guide
Tesla Supercharger Yes

Whether the car can charge at Tesla's Supercharger network.

This car

Yes, with the carmaker's approved CCS1-to-NACS adapter. Keep it in the car: without it you can't plug in.

Tesla's Supercharger network is the largest fast-charging network in North America and is known for its reliability. Since 2024 Tesla has opened most of it to other brands whose carmakers signed agreements.

Yes means the car can charge there: directly if it has a built-in NACS port, or with the carmaker's approved adapter if it has a CCS1 port. You start and pay through the Tesla app or the car's own app, and drivers of other brands usually pay a little more per kWh unless they buy a Tesla charging membership.

Older Supercharger stations (V2) still only work with Teslas. The Tesla app shows which stations your car can use.

No means we don't know of Supercharger access for this car, so road trips rely on networks such as Electrify America, EVgo and ChargePoint. Check their coverage on the routes you drive.

All specs explained in the spec guide
Vehicle-to-Load (V2L) Yes

Whether the car can power appliances from its battery.

This car

Yes. This car can power appliances from its battery. In a power cut, running a typical fridge for a week takes roughly 10 kWh, about 13% of this battery.

With Vehicle-to-Load, the car becomes a large portable power bank. You plug ordinary appliances into outlets in the cabin, trunk or truck bed, or into an adapter that fits the charge port.

Most V2L systems supply about 1.9–3.6 kW: enough for a fridge, a coffee maker, power tools, lights or laptops, but not a whole house. Some pickup trucks offer much more (9.6 kW or beyond).

Typical power draws: a phone charger 10–20 W, a laptop about 60 W, a fridge 150–400 W while its compressor runs, and a coffee maker or microwave about 1,000–1,500 W. Add up what you want to run at the same time and keep it under the car's limit.

It's handy for camping, tailgating, work sites and power cuts. The car stops supplying power at a battery level you choose, so you can still drive away.

Related terms: V2H (vehicle-to-home) powers your house through extra equipment installed at home, and V2G (vehicle-to-grid) sends power back to the grid. Neither is covered by this spec.

All specs explained in the spec guide
Driver assistance Level 2

How much of the driving the car can do, and who's responsible while it does.

This car

Level 2: the car can steer, brake and accelerate at the same time, but you are the driver. Keep your eyes on the road and be ready to take over at any moment.

The levels come from SAE International's standard J3016. They describe who is responsible for driving, not how impressive the system feels. The line that matters is between Level 2 and Level 3: at Level 2 you are always the driver; at Level 3 the car is, within strict limits.

Level 2 systems steer, brake and accelerate at the same time (adaptive cruise control plus lane centering), but you must watch the road constantly and be ready to take over instantly.

Level 2+ isn't an official SAE level. It's the industry's name for Level 2 systems that do more: hands-free driving on mapped highways, automatic lane changes, or following a route through city streets. A camera usually checks that you're watching the road, and you remain fully responsible.

Level 3 lets you take your eyes off the road in specific conditions, typically slow traffic on approved highways, and do something else, like watch a video. You must take back control when the car asks. Very few cars offer it, and only in certain places.

Level 4 needs no driver at all within a defined area, like the robotaxis operating in some cities. No car sold for private use offers it today, so a Level 4 label here refers to a robotaxi or to the maker's stated plans.

Many advanced systems need a paid subscription after a free trial, and some only work on roads the carmaker has mapped.

What each driver-assistance level means Swipe the table sideways to see it all
Feature Level 2 Partial automationThis car Level 2+ Advanced Level 2 (industry term) Level 3 Conditional automation Level 4 High automation
Who's drivingYou, with help steering and braking.You, supervising the car.The car, in approved conditions.The car. No driver needed.
Hands on the wheelUsually required.Often hands-free on approved roads.Not while it's driving.No one needs to be at the wheel.
Eyes on the roadAlways.Always. A camera checks.Not while it's driving, but stay ready to take over.Not needed.
Where it worksMost roads with clear lane markings.Mapped highways, and for some systems city streets.Approved highways, often only in slow traffic, in certain states or countries.Only inside a defined service area.
Who's responsibleYou, always.You, always.The system while it's driving; you once it asks you to take over.The company operating it.
ExamplesTesla Autopilot, Hyundai Highway Driving Assist, most lane-centering cruise control.GM Super Cruise, Ford BlueCruise, Tesla FSD (Supervised).Mercedes-Benz Drive Pilot.Robotaxis such as Waymo.

Levels follow the SAE J3016 standard; Level 2+ is an industry label, not an official level. Levels 0, 1 and 5 aren't shown because none of the cars we list sit there.

All specs explained in the spec guide
System name Highway Driving Assist 2

The carmaker's brand name for its driver-assistance system.

This car

Highway Driving Assist 2 is Hyundai's name for its driver-assistance system, which we rate Level 2. The name is marketing; the level tells you what it actually does.

Every carmaker markets its system under its own name: Autopilot, Super Cruise, BlueCruise, Highway Driving Assist and so on. The names follow no standard, and some sound more capable than they are.

To know what a system really does, look at its level and ask three questions. Is it hands-free? On which roads does it work? Does it need a subscription after the trial?

Features can change with over-the-air software updates, so a car can gain abilities over time, or lose some if a subscription lapses.

All specs explained in the spec guide
Markets US, EU, KR

Where this version of the car is sold.

This car

Sold in: United States, European Union, South Korea.

Codes are country or region abbreviations: US (United States), CA (Canada), MX (Mexico), EU (European Union), DE (Germany), CN (China), JP (Japan), KR (South Korea), VN (Vietnam), SA (Saudi Arabia) and ME (Middle East).

When a car is sold in several regions, the specs we list are for the US version. Versions for other markets can differ in battery, charge port, range test and price.

A car that isn't sold in the US can't simply be bought here: it lacks US certification, and its plug and service network may not fit. Its price is a currency conversion from its home market, not a US price.

All specs explained in the spec guide
Status Available

Whether you can buy the car now, or it's still to come.

This car

Available. This trim is on sale now, though stock and wait times vary by region.

Available means the car is on sale, though stock, wait times and the trims on offer vary by region and dealer.

Upcoming means the carmaker has announced the car but it isn't on sale yet. Specs and prices for upcoming cars are often targets or estimates and can change before launch, so treat them as provisional.

All specs explained in the spec guide
MSRP $50,000

The carmaker's list price for this trim, before extras.

This car

$50,000 before options, fees and taxes: cheaper than 71% of the 664 trims we list (typical: $65,000).

Expect to pay more once a destination fee (commonly $1,000–$2,000 on EVs), taxes, registration and any options are added.

MSRP is the manufacturer's suggested retail price: the list price of this trim before options. What you actually pay is usually higher. Add a destination (delivery) fee, commonly $1,000–$2,000 on EVs, plus sales tax, registration and any options or dealer add-ons.

It can also end up lower. Dealers may discount, and some states, cities and utilities offer EV rebates or incentives, so check what's available where you live.

Lease and finance deals can change the real cost a lot, especially on slower-selling EVs, so compare monthly costs as well as the sticker price.

For cars that aren't sold in the US, the price is converted from the home-market price, so treat it as a rough guide only.

All specs explained in the spec guide
Cost per mile of range $192

The price divided by the range: how many dollars you pay for each mile of range.

This car

$192 for each mile of EPA range: better value than 64% of the 657 EPA-rated trims we list (typical: $220).

A $45,000 car with 300 miles of range costs $150 per mile of range; a $60,000 car with the same range costs $200. Lower means more range for your money.

It's a quick value check, not a verdict. It ignores comfort, features, charging speed and efficiency, so use it to spot bargains rather than to choose a car on its own.

Only compare it between cars rated on the same range test.

All specs explained in the spec guide

Safety and recalls

From NHTSA, the US road-safety regulator, for the 2024 Ioniq 5. What these mean

Crash-test rating

★★★★★ overall

Version testedOverallFrontSideRollover
SUV Later Release AWDNot ratedNot rated★★★★★★★★★★
SUV Later Release RWDNot ratedNot rated★★★★★★★★★★
SUV Early Release AWD★★★★★★★★★★★★★★★★★★★★
SUV Early Release RWD★★★★★★★★★★★★★★★★★★★★

Recalls on file

3 recalls for the 2024 Ioniq 5. What recalls mean

Electrical System:Propulsion System:Traction Battery · 2026-07-02

Hyundai Motor America (Hyundai) is recalling certain 2023-2024 Ioniq 5 vehicles. The high voltage battery cells may contain misaligned electrodes, which can lead to a fire while parked or driving.

Risk: A fire increases the risk of injury.

Fix: Owners are advised to park outside and away from structures and limit their charge to a maximum of 80% until the recall repair is complete. Dealers will replace the high voltage battery system assembly, free of charge. Owner notification letters are expected to be mailed August 31, 2026. Owners may contact Hyundai's customer service at 855-371-9460. Hyundai's number for this recall is 305. Vehicle Identification Numbers (VINs) involved in this recall became searchable on NHTSA.gov on July 3, 2026.

NHTSA campaign 26V432000

Electrical System:12V/24V/48V Battery · 2024-11-18

Hyundai Motor America (Hyundai) is recalling certain 2022-2024 IONIQ 5, 2023-2025 IONIQ 6, Genesis GV60, Genesis GV70 "Electrified," and Genesis G80 "Electrified" vehicles. The Integrated Charging Control Unit (ICCU) may become damaged and stop charging the 12-volt battery, which can result in a loss of drive power.

Risk: A loss of drive power increases the risk of a crash.

Fix: Dealers will inspect and replace the ICCU and its fuse, as necessary. In addition, dealers will update the ICCU software. All repairs will be performed free of charge. Owner notification letters were mailed December 20, 2024. Owners may contact Hyundai customer service at 1-855-371-9460 or Genesis customer service at 1-844-340-9741. Hyundai's numbers for this recall are 272 (Hyundai) and 025G (Genesis). This recall expands and replaces previous recall number 24V-204. Vehicles previously repaired under recall 24V-204 will need to have the new remedy completed.

NHTSA campaign 24V868000

Electrical System:12V/24V/48V Battery · 2024-03-15

Hyundai Motor America (Hyundai) is recalling certain 2022-2024 IONIQ 5, 2023-2024 IONIQ 6, Genesis GV60, Genesis GV70 "Electrified," and Genesis G80 "Electrified" vehicles. The Integrated Charging Control Unit (ICCU) may become damaged and stop charging the 12-Volt battery, which can result in a loss of drive power.

Risk: A loss of drive power increases the risk of a crash.

Fix: This recall is replaced by NHTSA recall number 24V-868. Vehicles already repaired under this recall will need to have the new remedy completed. Dealers will inspect and replace the ICCU and its fuse, as necessary. In addition, dealers will update the ICCU software. All repairs will be performed free of charge. Owner notification letters were mailed April 22, 2024. Owners may contact Hyundai customer service at 1-855-371-9460. Hyundai's number for this recall is 257/021G.

NHTSA campaign 24V204000

This covers the model year as a whole. To check one car, enter its VIN at nhtsa.gov/recalls.

Similar range, other makes

Range and MPGe come from EPA certification data where available; rows labelled WLTP or CLTC use their home-market cycle and are not comparable. Charging times, price and driver-assistance details are estimates and may be out of date. Verify with the manufacturer before buying.
Last checked 30 September 2026.