terça-feira, 29 de setembro de 2026


ALFA ROMEO


Alfa Romeo reveals the name of its new concept car: Cuorerosso

The concept car set to take center stage at the 2026 Paris Motor Show will be named the Alfa Romeo Cuorerosso. This name captures the very essence of the brand, uniting two symbols deeply rooted in its identity: the color red—the color of passion and an unmistakable hallmark of the Alfa Romeo spirit—and the heart, the source of that same energy and a symbol of the profound, instinctive bond connecting every one of the brand's creations to its drivers.

In the Cuorerosso, these two elements beat in unison, forming a statement of intent that transcends the name itself to represent a car of the future—one designed above all to deliver a powerful emotional experience.

It is the car that fans of the brand ("Alfistis") have long awaited, capable of expressing that unique automotive interpretation woven into the DNA of the "Biscione" brand: a vision that goes beyond the concept of a mere means of transport to embrace the purest driving emotions.

What defines Alfa Romeo is not only its distinctive design and cutting-edge technology but also the powerful, almost instinctive connection forged with the person behind the wheel—a symbiotic relationship that this concept elevates to an even more intense level. Its roots lie in a unique automotive culture where superb craftsmanship, design, and performance merge with passion, transforming attention to detail into beauty, and beauty into emotion. Created for those who still love driving and seek authentic experiences behind the wheel, Alfa Romeo’s latest creation draws inspiration from Italy—with its tradition of superb craftsmanship and refined aesthetic sensibility; from a sporting spirit—a constant pursuit of dynamism and driving pleasure; and from the color red—a symbol of performance and passion that has always been part of the brand's heritage. From these three elements emerges a masterpiece that is unmistakably Italian and unmistakably Alfa Romeo, looking toward the future with ambition and boldness.

Choosing an Alfa Romeo has never been merely a rational act, but an impulse from deep within—one that reason confirms only later. It is precisely this ability to forge a deep harmony with customers that makes Alfa Romeo a true "love brand"—a brand that transcends the product itself to build an enduring relationship. This harmony shapes *Cuorerosso*, a concept developed by the very people who create Alfa Romeo cars every day, intended for the brand's enthusiasts (the "Alfisti") worldwide—people united by the belief that driving is an experience felt first, even before it can be described in words. After all, the most authentic emotions are not chosen; they simply happen. Like the beating of a heart—an involuntary muscle that needs no permission to act. Just like passion, which cannot be explained or commanded, but is simply experienced freely and instinctively. Reason can describe an emotion, but the heart is what gives our feelings intensity and value. And without a heart, we would be nothing but machines.

From October 12 to 18, a new concept car will be on display in Hall 4 of the Paris Expo Porte de Versailles exhibition center. The Alfa Romeo press conference is scheduled for October 12 at 10:55 a.m.

Autonews

 

KIA


2026 Kia PV5 Chassis Cab 

There is no ticking a cheaper box, and that's a bit curious when you remember that some regions offer a standard-range pack with 51.1 kWh as opposed to 71.2 kWh only in the United Kingdom. A chassis cab is useful after the converter bolts a body to it, and range dies with every kilogram sacked on the exposed rear frame.

While it may be pricey, the larger battery does make plenty of sense from this point of view. Kia argues the very same case, highlighting that fleet operators with longer or less practical daily routes prefer the larger pack. Also worth noting, some operators may also be hampered by the lack of a charger at every depot.

On paper, the charging numbers are best described as workable rather than impressive. DC fast charging runs at up to 120 kilowatts, taking the battery's state of charge from 10 to 80 percent in around half an hour. Using an 11-kW wallbox, the stint from 10 to 100 percent on AC is estimated at six and a half hours.

The British version of the PV5 Chassis will come with the Long Range 71.2kWh battery installed (there’s a smaller 51.1kWh Standard Range version available in Europe that Kia UK’s not bothering with). 

Kia’s estimating 258 miles of range from the Long Range (416km) based on the performance of its van version, but obviously mileage will vary depending on what you stick on the back of the PV5 Chassis. 

It’ll DC rapid charge at up to 120kW for a 10–80% charge time of 30 minutes and comes with 11kW AC charging. 

The PV5 electric chassis cab version is yours to do with it as you please, but Kia does say that its official conversion partner TGS Automotive Group does a nice line in lightweight tipper, box and dropside trucks with a variety of accessories available. 

Kia says that it has sold over 13,000 PV5 across Europe in the first half of 2026, with the van taking over a third of electric van sales in the region. 

The company hasn’t said exactly when the new option is going on sale and how much it will cost, but has said that it plans to roll the PV5 Chassis out across Europe by the end of 2026. 

Final range and payload depend on the finished conversion, load, route, and conditions. Kia says so itself, and it's right to. For a rough yardstick, the 71.2-kWh version of the PV5 Cargo in L2H1 flavor is good for 258 miles (415 kilometers) on a full charge in the WLTP. The chassis-cab model with a body on the back, therefore, will probably land somewhere under the aforementioned figure.

Erhan Eren, the PBV director at Kia Europe, keeps the pitch short. Commercial vehicle customers need solutions that reflect how they operate, with the long-range battery giving businesses greater scope to balance conversion requirements, charging access, and distance. The PV5 Chassis is the most bare-bones member of the family, which includes Cargo and Passenger models.

The conversion-focused variant is Kia's first dedicated chassis-cab electric platform, built on the E-GMP.S architecture. Said platform was engineered from the start for application-specific bodies, and the dimensions certainly help. The PV5 Cargo stays under five meters long, and Kia claims a best-in-class turning circle that rivals that of compact hatchbacks.

City streets, building sites, and depots are where that 5.5-meter (18 feet) turning circle matters and where most of these vehicles will spend their working lives. Britain gets a named partner for the bodywork. TGS Automotive Group is the official PBV conversion partner in the United Kingdom, promising box, tipper, and dropside solutions for the PV5 Chassis.

Modular extras include mesh cage, beacons, chapter 8 traffic management livery, and fall arrest systems. Kia further claims the converted vehicles offer best-in-class payload, with those conversions scheduled to arrive in the fourth quarter. The platform rollout sits on solid ground, with PV5 recording 13,116 registrations across Europe in the first half of the year.

This means the PV5 took 37 percent of electric C-segment van sales, per ACEA's data for the EU, EFTA, and UK, enough to make it the segment's top seller. At launch, Kia backs the PV5 Chassis for the United Kingdom with a seven-year/100,000-mile vehicle warranty and eight years of battery coverage.

Flexibility invites applications...As part of the PV5 Chassis launch in the UK, Kia has confirmed that the TGS Automotive Group will offer a variety of conversions, like a lightweight tipper, a dropside and a box van.

After all, with the Chassis Cab not being locked into any one body style, the aftermarket is free to dream up all kinds of mobile accommodations. Even a larger box (think something like Geotrek’s Verus) would expand on stock capabilities.

Thankfully, it has the means to do so because it offers more than enough hauling capacity. The PV5 Chassis cab boasts a payload of up to 1,005 kilograms (2,216 pounds), putting it on par with much larger trucks.

Long Range Thrills...One and a half year after the debut of the Kia PV5 lineup in production form, Kia has launched the PV5 Chassis in the UK, exclusively available in the Long-Range configurator. This is fitted a a front-mounted electric motor generating 161 hp (120 kW / 163 PS) and a large 71.2 kWh battery pack, offering an estimated WLTP range of 259 miles (416 km) between charges.

Other markets get access to the Kia PV5 Chassis Mid-Range with the smaller 51.5 kWh battery and a less powerful electric motor producing 120 hp (89 kW / 122 PS). Both Long-Range and Mid-Range models have a maximum payload of 1,005 kg (2,216 pounds), closely matching most diesel-powered midsize pickups.

 

Autonews

segunda-feira, 28 de setembro de 2026


AUTONEWS


Glowing paint that maps air pressure could improve the design of future aircraft

Scientists have developed a new pressure-sensitive paint that delivers more accurate pressure measurements by minimising the effects of temperature fluctuations.

The material combines a platinum-based light-emitting compound with a specially engineered polymer, allowing it to respond more reliably during wind tunnel testing.

Trials showed a 25% reduction in temperature sensitivity compared with the current industry standard.

The improvement comes from chemically locking the active molecules into the polymer structure, preventing molecular clustering that can distort measurements.

The advance could help aerospace engineers make better-informed design decisions using cleaner aerodynamic data.

When engineers design a new aircraft, they need to know exactly how air flows over every surface. The pressure distribution must be controlled or the fuel efficiency, handing, or even structural safety can be affected.

A promising new technique for measuring this is by applying a special paint to scale models tested in wind tunnels, which glows in proportion to the air pressure pushing against it. However, these paints have one main flaw – they’re sensitive to temperature as well as pressure. As a model heats up during testing, the paint output can shift and introduce errors that engineers then have to unpick.

Now, a team from The University of Manchester’s Departments of Mechanical and Aerospace Engineering, and Chemistry, have created a paint that substantially reduces the problem. This new material uses a light-emitting, platinum-based compound, locked into a specially engineered plastic. The results of trials using the paint, published in ACS Applied Engineering Materials, show a drop in temperature sensitivity to just 0.3% per degree Celsius – 25% less than the current industry benchmark.  

Dr Elliott Nunn, first author based in the Department of Chemistry, The University of Manchester, said: “When you’re testing a vehicle at high speed it can heat and cool dramatically based on its aerodynamic design. By creating a pressure-sensitive paint which doesn’t respond as strongly to this heat, we’ve got something that’s much closer to measuring exactly what we want to measure. Our hope is that this will really help the engineers designing the next generation of high-performance and more sustainable aircraft and spacecraft, to make better-informed decisions through cleaner data.”

Their breakthrough comes down to how the active ingredient sits within the material. In many existing paints, the molecules responsible for glowing can cluster together, and this clustering makes the paint more sensitive to heat. The Manchester team fixed this by anchoring this ingredient, from the same family of molecules that give blood its red colour, or make leaves green, directly into a tough, Teflon-like plastic. When held in place at the chemical level, the molecules are far less likely to cluster and the paint’s temperature sensitivity drops.

Aerodynamic performance data on a truncated cone model at supersonic flow collected using low temperature sensitivity PSP. Credit: The University of Manchester

Their breakthrough comes down to how the active ingredient sits within the material. In many existing paints, the molecules responsible for glowing can cluster together, and this clustering makes the paint more sensitive to heat. The Manchester team fixed this by anchoring this ingredient, from the same family of molecules that give blood its red colour, or make leaves green, directly into a tough, Teflon-like plastic. When held in place at the chemical level, the molecules are far less likely to cluster and the paint’s temperature sensitivity drops.

Dr Louise Natrajan, Reader in the Inorganic Chemistry Group, The University of Manchester, said: “Getting this chemistry right was thanks to a creative collaboration between our chemistry group and the aerospace engineering team – basically, they knew what the paint needed to do in a wind tunnel, and we knew how to create something that could do it.”

To test their paint under realistic conditions, the team applied it to a cone-shaped model designed to produce complex airflows, then ran this model through a supersonic wind tunnel where airflows can exceed Mach 5 – 5x the speed of sound. At these conditions the model’s temperature varies drastically across its surface. However, the new paint measured pressure accurately throughout the test, with results aligning closely with the values predicted by computer simulations.

This paint was also able to help the researchers visualise the corkscrew-shaped swirls of air that develop along concave curved surfaces – known as Görtler vortices – which are important for understanding how the thin layer of air next to a surface behaves at speed.

More accurate pressure measurements at high speeds and temperatures, could translate directly into helping the aerospace industry to develop safer, more efficient transport. The team are now planning to test their paint across a wider range of conditions, to build confidence in how reliably it can perform.

Scientists have developed a new pressure-sensitive paint (PSP) capable of glowing to map airflow over aircraft with much greater precision, minimizing errors caused by temperature fluctuations. This innovation, led by researchers at the University of Manchester, promises to transform wind tunnel testing and provide aerospace engineers with much cleaner aerodynamic data.

The technological breakthrough...Traditional pressure-sensitive paints have a critical flaw: they respond to both air pressure and temperature. As the model heats up during high-speed tests, the data becomes distorted.

The new formulation solves this problem by reducing thermal sensitivity by 25% compared to the industry standard. The team achieved this result through advanced molecular engineering:

• Preventing clustering: The active molecules (belonging to the same family that gives blood its red color) were chemically anchored directly onto a rigid polymer structure similar to Teflon.

• Molecular stability: This "locking" mechanism prevents the molecules from clustering, thereby eliminating most of the sensitivity to residual heat.

Supersonic speed tests...To validate the paint under extreme conditions, it was applied to a conical model and tested in a wind tunnel at speeds exceeding Mach 5 (five times the speed of sound). Even amidst drastic temperature fluctuations on the object's surface, the paint mapped pressure with precision that matched digital computer simulations.

The mapping also allowed for the visualization of Görtler vortices—corkscrew-shaped air currents that form on concave surfaces and determine how thin layers of air behave at high speeds. 

Impact on the future of aviation...The ability to obtain ultra-precise, real-time pressure data reduces the need for expensive and complex physical sensors. With cleaner aerodynamic data, the aerospace industry gains crucial tools for designing safer, more stable, and fuel-efficient commercial and military aircraft.

The University of Manchester


AUDI


2026 Audi A6

The A6 is now available in two variants: a gasoline model bearing Audi’s TFSI designation and an electric version with the e-tron badge. The Audi A6 e-tron—which utilizes a different platform than its gasoline counterpart—was a finalist for last year's Car of the Year award and garnered significant praise from the judges. This raises an obvious question: does the gasoline-powered Audi A6 stand out as much as its electric sibling? And does it have what it takes to compete with the 5 Series and E-Class?

The A6 is entering its sixth generation, and Audi has used this transition to implement significant changes. In 2025, the A6 lineup consisted of three variants: the A6 45, A6 55, and S6. The "45" and "55" trim level designations have been discontinued; however, the 2026 model effectively takes the place of the "55," delivering a substantial boost in standard horsepower and torque—albeit at a considerably higher price point than the former entry-level "45" model.

Even so, the new A6 slots in between the BMW 530i and the Mercedes-Benz E350 in terms of pricing, while offering over 100 additional horsepower and torque compared to its German rivals. Therefore, although the starting price has risen since last year, the value proposition is significantly improved.

The 2026 Audi A6 now starts at $65,395 and comes standard with a 3.0L TFSI V6 engine producing 362 hp and 550 Nm of torque—a major upgrade over the 255 hp and 400 Nm offered by the Mercedes E350 and BMW 530i. It also represents a notable step up from the base model of the previous A6, which produced 261 hp and 370 Nm, and a significant improvement over the previous A6 55, which delivered 335 hp and 500 Nm.

But it’s not just about the numbers. The 2026 A6 utilizes Audi’s new Premium Platform Combustion—an evolution of the older MLB Evo architecture that now also underpins the recently redesigned A5 and Q5. The new A6 is an impressive 17 cm longer than its predecessor, thanks in part to a 3.3 cm increase in wheelbase. Together, these changes elevate the A6 above the previous version; when combined with updated technology and powertrain improvements, it appears Audi has put the A6 back on the right track—at least on paper.

Autonews

 

TATA MOTORS


Tata Aeris: price start at $5,500 

Tata Motors has unveiled the Aeris model in India, with a starting price on the local market of (converted) 5,500 US dollars.

According to Carscoops, despite its new name, the Aeris is essentially a significantly upgraded version of the Tigor model—which has been on the market since 2017, with facelifts in 2020 and 2025. Measuring under four meters in length, this model features a sharper design and a better-equipped cabin while maintaining excellent value for money.

Visually, the Aeris retains the Tigor's characteristic silhouette and compact dimensions, with a length of 3,995 mm and a wheelbase of 2,450 mm.

The front end is distinguished by simpler, more aggressive headlights, similar to those on the recently refreshed Tiago hatchback. These are paired with a fully enclosed gloss-black grille and modern air intakes on the bumper. The side profile remains largely unchanged, though subtle plastic elements have been added around the wheel arches, alongside new 14- or 15-inch wheels. At the rear, the car stands out with slimmer taillights connected across the vehicle's entire width and a redesigned rear bumper.

The interior layout mirrors that of its predecessor, but the dashboard and air vents have been redesigned, and recycled materials are now used in the construction. The top-spec versions feature a 10.25-inch infotainment screen, a digital instrument cluster, a system for simultaneously wirelessly charging two smartphones, a 360-degree camera, rear parking sensors, an integrated dashcam, ventilated front seats, and rear air vents. Six airbags come as standard across the entire lineup, while systems such as blind-spot monitoring are offered in the highest trim level.

The Aeris offers up to 419 liters of cargo space behind the five-seat passenger cabin.

In terms of safety, it features 6 airbags and ISOFIX child seat mounts as standard, while higher variants receive a 360-degree camera, a tyre pressure monitoring system (TPMS), electronic stability control (ESC), hill hold control (HHC),  rear parking sensors, rain-sensing wipers and rollover mitigation.

Powertrain options...The Tata Aeris is powered by a 1.2-litre naturally aspirated petrol engine, which is available with an optional factory-fitted dual-cylinder CNG kit. Both engine options are offered with manual and AMT transmissions.

Engine

1.2-litre naturally aspirated petrol

1.2-litre naturally aspirated petrol + CNG

Power

86 PS

76 PS (CNG)

Torque

113 Nm

97 Nm (CNG)

Transmission

5-speed MT/ 5-speed AMT

5-speed MT/ 5-speed AMT

Buyers can choose between two naturally aspirated 1.2-liter engines (without electric assistance). The petrol version develops 85 hp (63 kW), while the compressed natural gas (CNG) version delivers 75 hp (56 kW). In both cases, power is transmitted to the front wheels via a five-speed manual or five-speed automatic transmission.

Said Shailesh Chandra, Managing Director and CEO of Tata Motors Passenger Vehicles: “The sedan remains one of the most timeless expressions of the car, with a loyal set of customers who value its distinctive combination of comfort, space, driving dynamics and practicality. With Aeris, we are bringing to life the TATA philosophy of providing meaningful choice across body styles and powertrains, with a stylish new sedan for customers who see their car as an expression of their progress, achievements and personality.”

Aeris brings together thoughtful design and intelligent technology to make everyday mobility more rewarding. The premium cabin features AeroLux ventilated leatherette seats, an OpenView dashboard, dual integrated screens, a 26.03 cm HD touchscreen infotainment system and a 12.7 cm Digital Island Cluster, creating a modern and engaging driving environment.

Designed around the needs of contemporary customers, Aeris combines convenience with connectivity through a first-in-segment Dual Smartphone Deck with wireless charging, wireless Apple CarPlay® and Android Auto®, iRA with over 35 connected car features, automatic climate control, rear AC vents, 65W Type-C fast chargers and a spacious 419-litre boot. The result is a sedan that goes beyond utility to deliver a richer and more intuitive ownership experience.

Defeat stress...Confidence sits at the heart of Aeris. Built on Tata Motors Passenger Vehicles' proven Safety Dome architecture and engineered using Ultra High Strength Steel, the sedan is designed to provide comprehensive occupant protection.

Six airbags come as standard across the range, supported by Electronic Stability Program (ESP), ABS with EBD and Corner Stability Control, Hill Hold Control and ISOFIX child-seat anchors. Driver confidence is further strengthened through a first-in-segment Blind View Monitor, MultiView Digital Video Recorder and a 360° Surround View System HD camera offering multiple 2D and 3D viewing perspectives.

Features such as auto headlamps, rain-sensing wipers, rear defogger and enhanced rear-impact protection contribute to a safer and more reassuring driving experience. On iCNG variants, dedicated safety technologies including leak detection, advanced leak-proof materials, thermal incident protection and rear crash protection provide an additional layer of confidence.

The Tata Aeris is available for order in India, with the first deliveries scheduled for October 11. Prices start at $5,500 for the entry-level Smart version with a manual transmission, while the top-tier Accomplished trim—featuring the CNG engine and automatic transmission—costs $10,200.

Autonews and MotorLand

domingo, 27 de setembro de 2026


AUTONEWS


Why are flush-mounted car door handles becoming increasingly common?

Getting into a car increasingly involves pulling a flush-mounted handle that pops out automatically. This invention isn't new; cars on the market have featured this solution for years. You might be one of those people who view it as an interesting aesthetic detail that gives the car a more modern look. But the truth is, in most cases, this system isn't installed simply to make the car look more modern.

The reason lies in the air, which acts as an invisible barrier the car must constantly cut through. The fewer protrusions on the car's surface, the less effort the engine requires and the less energy or fuel it consumes. Traditional door handles stick out several centimeters from the bodywork, disrupting airflow. But just how much does this aerodynamic disturbance affect performance?

Wind tunnel tests show that flush-mounted handles can reduce the aerodynamic drag coefficient (the well-known Cd) by between 0.005 and 0.015 points—significant when considering that a modern car might have a coefficient of 0.25. This reduction may seem small at first glance, but in modern aerodynamic design, every thousandth counts—especially now that electric cars are proliferating and many people remain concerned about their driving range.

You will better understand the importance of aerodynamics if we tell you that, at highway speeds, more than 70% of a car's energy can be used to overcome air resistance (depending on wind strength and direction, of course). In this scenario, reducing aerodynamic drag by half a point is akin to freeing the engine from an invisible burden. In terms of numbers—specifically regarding electric cars, which make the most use of this technology—this modest aerodynamic improvement translates to an extra 5 to 10 kilometers of range, depending on the model. This additional margin is appreciated on long trips and serves as an incentive for brands to try to offer greater range than their competitors.

Does this mean that flush door handles are just as important for internal combustion engine cars as they are for electric cars? The answer is that the reduction in air resistance is identical in both cases. However, the practical impact differs.

In a gasoline or diesel car, most of the fuel's energy (around 60% to 70%) is lost as heat through the exhaust and radiator. Furthermore, the front end of these cars requires open grilles to cool the engine via the radiator, creating considerable turbulence. In this context, reducing door-area drag offers a tangible benefit regarding fuel consumption—perhaps saving a few tenths of a liter—but the overall result is overshadowed by the inherent inefficiency of the internal combustion engine.

In an electric car, however, more than 80% of the energy stored in the batteries is utilized, and the front end lacks the massive grilles typical of a rally car. With a generally more sculpted body, any small protrusion—such as a door handle—contributes a larger percentage to the total drag. Therefore, while this helps reduce fuel consumption in combustion-engine cars, in electric vehicles, minimizing energy consumption and maximizing range become top priorities.

Many don't like the retractable door handle design...While it might help to give EVs a sleek exterior, flush-mounted door handles haven't been universally loved among drivers. Those found on the Tesla Model Y are manually opened by pushing in the larger section of the handle mechanism. Meanwhile, the Hyundai Ioniq 5 makes the handle accessible when the key fob is near, automatically popping out — though you can also utilize an emergency key found in the fob and manually press the handle inward to expose a mechanical lock. All of these different methods makes it difficult to figure out the manufacturer-specific quirks unique to each hidden handle.

While drivers might eventually get used to these quirks, passengers might fumble with what should be a simple task. Evidently, changing an easy-to-understand mechanism that's been a part of vehicles since the 1920s doesn't go over well with everyone. A 2024 poll conducted by GM Authority asked whether the Blazer EV should get classic or flush deployable door handles, and 64% of voters were in favor of traditional handles.

Even among those who are comfortable with how retractable handles work are finding new problems, with Tesla owners across the country complaining about their malfunctioning door handles. Some of the chief concerns include drivers being unable to open or close the doors with a dead battery. That's not the only issue, as YouTuber The Ioniq Guy showcased in a video where the handles failed to pop out due to being frozen in place.

Critics of the retractable door handle feature on many of today's EVs might be happy to learn that they're being scrutinized by officials, too. Due to safety concerns about emergency situations in which these door handles could hinder rescue efforts, China has banned certain retractable handles. That ban is expected to start in 2027, and it means that automakers will have to include a mechanical alternative so the doors aren't completely reliant on power to operate for the Chinese market.

Stateside, there have been tragic examples of these retractable door handles hindering rescue efforts. As reported by Bloomberg, off-duty firefighter Max Walsh came upon an EV crash and was required to break the window because the door handle failed to function. While he was able to pull out the driver, the driver's wife remained trapped in the vehicle for an additional length of time. This left her with severe facial burns and permanent respiratory damage, which could have been minimized if the first people at the scene were able to quickly open the doors.

As a result of growing reports focused around these retractable handles being an impediment in an emergency, the National Highway Traffic Safety Administration has become involved. Select Tesla Model Y doors are being examined by the agency, and in response, the automaker is reportedly working on a redesign.

So, while they may look very stylish, the real reason behind them lies in the battle against the wind. And this is a battle for which more and more manufacturers are trying to refine their designs.

Flush-mounted car door handles are becoming increasingly common because they improve vehicle aerodynamics and give cars a sleek, futuristic appearance

Main Reasons for the Trend:

• Better aerodynamics: Sitting flat against the car body, flush handles reduce wind resistance and aerodynamic drag by roughly 0.3% to 1.5%.

• Increased driving range: For electric vehicles, minimizing drag saves a small but measurable amount of energy, helping to slightly extend battery range.

• Modern aesthetic: Automakers use them to create clean, minimalist exterior lines that make vehicles look high-tech and advanced.

• Industry influence: Pioneered widely by brands like Tesla, the design quickly became a status symbol for modern luxury cars and electric vehicles

 

MERDEDES-BENZ


2026 Electric Mercedes-Benz GLC slalom test

This is the new electric GLC (or Mercedes-Benz GLC with EQ Technology, to use its full and exhaustively long name). It is Mercedes' answer to *Top Gear*'s 2026 Car of the Year—the BMW iX3. This is a major launch, both figuratively and literally, because the gas and diesel GLC is Mercedes' best-selling model worldwide. And with Mercedes' EV mission back on track thanks to the impressive new CLA (following the failures of the EQS, EQE, and EQC), expectations are high.

The electric GLC shares many components and technologies with the CLA, but it is the first model based on the all-new MB.EA-M version ('M' for mid-size vehicles) of the MB.EA (Mercedes-Benz Electric Architecture) platform, which will also underpin the new electric C-Class.

We were told that this car was "built with electrification as the priority," but that there will also be "a diverse portfolio of powertrains to meet every customer need." This means that hybrid, gasoline, and potentially even diesel versions will be launched in some markets. It is an approach very similar to the one Mercedes took with the new CLA. For now, however, it will be offered only in an electric version.

At launch, only one version will be available—the GLC 400 4Matic, featuring dual electric motors that produce 483 hp and drive all four wheels (though the front motor disconnects when not needed). There is a two-speed gearbox at the rear to improve efficiency, while a 94 kWh lithium-ion battery allows for a range of 652 km (405 miles) on the WLTP cycle on a single charge. Surpassing the magic 644 km (400-mile) mark is always impressive, though it still falls well short of the iX3's 805 km (500-mile) range—even though the BMW features a much larger battery (108 kWh, for those wondering).

Like the BMW, the system is based on an 800-volt architecture, enabling fast charging at up to 330 kW and the ability to add 300 km of range in just 10 minutes. Options include air suspension (shared with the S-Class) and four-wheel steering—with a 4.5-degree angle—which reduces the turning radius to 11.2 meters. Towing capacity is up to 2.4 tonnes.

Slalom test...The 2026 electric Mercedes-Benz GLC weighs around 2.5 tonnes but handles maneuvers well thanks to AIRMATIC air suspension and rear-axle steering, although specific closed-course slalom test results are not detailed in recent official reviews.

Performance and dynamics:

• Weight and stability: At approximately 2,500 kg, the SUV is heavy, but the low center of gravity provided by the batteries aids stability.

• Agility: The 11.2-meter turning radius and rear-wheel steering drastically improve agility in tight corners and confined spaces.

• Power: Versions such as the GLC 400 4MATIC deliver around 489 hp with all-wheel drive.

 

by Autonews

ALFA ROMEO Alfa Romeo reveals the name of its new concept car: Cuorerosso The concept car set to take center stage at the 2026 Paris Motor S...