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Silicon carbide (SiC) devices for the next-generation of electric vehicles

18 Mar 2021

Before electric cars become a familiar sight on Europe’s roads, the technology behind them needs to evolve to improve the size and efficiency of their drivetrains, the speed that they can be charged and the range that they can drive. The silicon carbide inverter could be crucial to helping to overcome these issues

Sales of battery-electric vehicles (BEVs) are increasing as consumers and automakers alike benefit from European government subsidies for electric vehicles. Momentum is gathering pace as automakers including Ford, Jaguar Land Rover and Volvo have all announced plans to phase out internal combustion engines in their vehicles.

Despite the small steps being taken so far by the technology, the move towards an electrified fleet in Europe is unstoppable and the days of petrol and diesel engines are already numbered. It is a question of when, not if, we will all be driving electric cars in the future. 

But before we reach this point, the technology behind BEVs needs to evolve to overcome a number of challenges, which include the size and efficiency of their drivetrains, the speed at which they can be charged and the range that they can cover.

A crucial element in all this is the inverter. This component controls the input of electricity from the battery or batteries to the motor. Aside from converting incoming direct current to alternating current, the inverter controls the variability of power supplied to the motor when the driver demands it. As motors develop and migrate from 400-volt electrical systems to the far more versatile 800-volt units, the inverter is playing a crucial role. 

Increasingly, the industry is moving away from silicon to the use of silicon carbide inverters (SiCs), which have a number of significant advantages when twinned with high-voltage systems.

Thomas Steffen, Senior Lecturer in Control Engineering at Loughborough University in the UK, explains: “A conventional inverter is about 97% to 98% efficient in moving energy from the battery to the motor, and a SiC-based inverter can push this to an amazing 99%. Although this is only a modest increase of 1% to 2%, the benefits for the whole vehicle can be more significant.”

The two materials are very different in that they have varied physical parameters. Silicon carbide has the advantage that it is well suited to higher thermal conductivity, which is important in high-revving, high-voltage motors.

“Compared with other silicon conductors, silicon carbide has a higher maximum operation temperature, which means you can squeeze more power out of it,” says Roland Bittner, a senior engineer at Semikron Elektronik, which is a partner of Drivemode, an EU research project. Its goal is to produce small adaptable electric modules consisting of power electronics including an SiC-inverter, a gearbox, and the motor itself. These modules are capable of being scaled up from one unit to four according to the power requirements of different vehicle segments.

SiC inverters are ideal in such a modular approach because they allow a reduction in the size of all the crucial components. Bittner says: “If you go to higher battery voltage [such as 800V] and require less current, you also need smaller cables and smaller cables means less cost, less weight in the vehicle. It is also easier to assemble [the modules] in the vehicle.” 

Watch the video interview on SiC inverters in electric cars with Roland Bittner, engineer at Semikron, Germany 

Steffen adds: “Through reduced weight and increased regenerative braking, the range and the efficiency of the vehicle can increase by about 3%. For a typical vehicle, this translates into about 10 miles (16 km) more range.”

Driver anxiety in relation to the distance a BEV can drive between charges is one of the biggest hurdles in their acceptance among consumers and key to next-generation models. A small 800-volt enabled module, as used by Drivemode, frees up additional space that not only benefits internal passenger and storage possibilities, but also enables the placement of additional batteries in order to extend range in BEVs. 

Hyundai Motor Group is among the first automakers to commercialise 800-volt systems with their new Electric-Global Modular Platform (E-GMP). The company unveiled its IONIQ 5 on the platform last month, and the automaker says the crossover model can reach 80% of its full power within 18 minutes on a fast charger. This is roughly a fifth of the time a conventional 400-volt car needs to reach the same charge, and the added efficiency of the SiC inverter means more of this power survives to drive the vehicle.

“We want to offer best efficiency and this starts [with less lost power] from charging, up to driving and recuperation. With 800-volt charging, the current can go directly to the battery without any transformation (possible losses),” a spokesman said. The automaker is expecting to launch 23 new Hyundai and Kia BEV models by 2025 in a bid to hit 1 million cars by mid-decade. 

Like the Drivemode project, the company has packaged its electric powertrain system into a compact module that includes a SiC inverter, something that Thomas Steffen expects to see more and more automakers adopting in the move to next-generation BEVs.

“Now with SiC inverters, it makes sense to connect the inverter and motor into one unit with a common case and cooling circuit,” he says. “What is interesting about the Drivemode project is that they aim for a drive unit that is both integrated and modular. So the inverter is integrated into a common case with the motor,” he adds.

Such technology is leading industry observers to forecast that BEVs will likely reach cost parity with internal combustion engine vehicles by mid-decade, which means they could soon be a more common sight on Europe’s roads.  

By David Jolley

Why reducing drivetrain size can make electric cars even greener

10 Mar 2021

Battery electric vehicles (BEVs) already go some way to reducing air pollution in Europe. The latest developments in electric drivetrain technology, however, are helping to take that one step further

Battery electric vehicles (BEVs) are starting to win market share in Europe, as consumers opt for cleaner technology and lawmakers strengthen emissions rules for automakers in a bid to bring down pollution levels.

BEVs already go a long way to improving the environment, particularly in cities, by helping to cut CO2 and particulate pollution. But the latest developments in electric drivetrain technology are helping to take that one step further.

Making motors smaller and encapsulating them in modular systems with other key components could not only be the next step to cutting the costs of electric motoring, but it will help make it even greener too, in a variety of ways.

Automakers are under intense pressure to move beyond the initial euphoria of introducing zero-emissions vehicles to the market and start using these models to help make serious inroads into reducing CO2 pollution. 

The European Union’s target this year aims to reduce average fleet emissions of new cars sold in the bloc to 95 grams per kilometre. Automakers that fail to hit this target will face fines of 95 euros for every excess gram of CO2 they emit. Understandably, they are keen to comply and avoid penalties that can quickly mount up to many millions of euros.

“The incentive is rather big. The reaction of most automakers – complaining and at the same time saying ‘yes, we will do more’ – speaks for itself,” says Juergen Pieper, an auto analyst and director of research at Bankhaus Metzler in Frankfurt.

The emissions targets are one of the reasons Pieper believes the shift towards an electric future is now fully underway, despite the fact that technology needed for the next generation of BEVs is still in its infancy, technology such as higher-voltage electrical systems. 

While most manufacturers have traditionally used 400-volt layouts, automakers such as Porsche and Hyundai have started to introduce larger 800-volt units with big environmental benefits. Professor Damijan Miljavec of the University of Ljubljana’s Faculty of Electrical Engineering was instrumental in developing a high-voltage unit for the European Union research project Drivemode, which is seeking to develop a highly efficient and compact modular electric drivetrain consisting of power electronics, a gearbox, and the motor. These modules are designed to be scalable according to the power requirements of different vehicle segments.

Video showing how the modular drivetrain components, developed by the EU project Drivemode, work

Professor Miljavec’s initial task was to choose a smaller, greener motor for the module as he explains: “We increased the speed [of the motor] by a factor of two, from 10,000 [revs per minute] to 20,000, which means, to maintain the same power output, we can halve the size of the motor, which reduces the amount of copper and the amount of magnets.”

This is significant because permanent magnet motors use rare-earth materials that are very environmentally unfriendlyto mine. The ores that rare earths are extracted from are often separated using large amounts of toxic compounds such as sulphate, ammonia and hydrochloric acid. Processing one ton of rare earths can result in many more tons of toxic waste.

In addition to halving the use of these materials in their motors, Drivemode also claims the modules are fully recyclable: “You can take out the copper and reuse the parts by melting them down and producing new parts. You can also quite easily remove the magnets and reuse them, so it is 100% recyclable,” Miljavec says.

From a practical view, these smaller, lighter motors also offer energy savings for consumers. Reducing the weight of the vehicle means it can travel further on a single charge. This leads to an increased vehicle efficiency of about 3% or 10 miles (16 km) more range for an average BEV, industry observers say.

The silicon carbide inverter used by the EU project also reduces power leakage between the battery and the motor by up to 2%, which represents a significant saving for BEV drivers. 

Additionally, smaller, high-voltage systems such as Drivemode’s are much faster to charge: Hyundai, which launched its Ioniq 5 last month using an 800-volt setup, says the BEV can reach 80% of its full power within 18 minutes on a fast charger, which is about a fifth of the time needed by a conventional 400-volt car. This could remove the need to pack cars with additional batteries in a bid to extend range and avoid lengthy charging stops. Since batteries contain materials such as lithium and cobalt that are mined using high levels of energy and water, any reduction in battery demand has a positive effect on the environment.

As automakers move away from fitting electric drivetrains to existing combustion-engine vehicles and more towards developing brand new BEVs, modular systems can offer obvious environmental benefits in standardising, simplifying and ultimately speeding up the manufacturing process. 

“In principle, standardised modular designs could offer pre-set capacities, voltages, and form factors in much the way that AA or AAA batteries do for many small electrical products today,” says Professor Peter Wells, of Cardiff University’s Centre for Automotive Industry Research. Wells also sees the benefits of an industry-wide move to pool next-generation BEV technology that could help smaller, less cash-rich automakers build their own electric vehicles.

This will lead to a larger market for BEVs that will not only help automakers, but also the environment around us.

By David Jolley

Electric cars – Making the move from niche to mainstream

23 Feb 2021

Battery electric cars are slowly gaining in popularity among consumers in Europe as mainstream automakers respond to an industry-wide shift away from petrol and diesel vehicles. But despite pledges from regional governments to abolish sales of new combustion-engine vehicles in the next two decades, and pressure from the European Union to reduce carbon emissions, consumers are still not opting for battery-driven models in the numbers that are needed to turn them from a niche segment to mainstream one.

Data released this month from Europe’s ACEA industry association shows that despite a 10.5% rise in electrified vehicles last year, driven by a 117% jump in BEVs, petrol and diesel models still commanded an overall 75.5% share of European sales.

Volkswagen Group, the world’s second biggest automaker by volume after Toyota, is currently investing 73 million euros up to 2025 to prepare its German plants in Hanover, Emden and Zwickau for the production of BEVs.

Despite this, just 231,600 cars sold by the automaker last year were full-electric models, from overall global sales of 9.3 million vehicles.

One of the biggest problems BEVs face is their price. As an example, Opel’s entry-level full-electric e-Corsa currently costs 29,900 euros in Germany, whereas its petrol-driven sibling starts at 14,415 euros, less than half the price.

Part of the reason for the high pricing is a lack of uniformity in production. Automakers are only now beginning to produce universal electric platforms that can be scaled up or down for different-sized vehicles segments. Electric drivetrains, however, are still largely built in a bespoke fashion for different BEVs.  

There are other big hurdles that impact the cost of BEVs, and they include the cost of batteries and high raw material costs.

One European Union research project addressing all these issues is Drivemode. It seeks to develop a highly efficient and compact modular drivetrain for BEVs that uses the vehicle’s stored energy more efficiently through a higher-voltage 800-volt electric system. Currently, most automakers are using 400-volt systems.

“With Drivemode we have a very integrated unit. That way it makes [everything including] the assembly process, the sourcing, the storing and the assembly, to putting it in the vehicle, very optimal, so you have a reduced production cost,” explains Deepak Singh, an engineer from National Electric Vehicle Sweden (NEVS), one of the project’s partners.

In Singh’s opinion, automakers are still taking a complicated approach by implementing varying electrical setups for each vehicle segment they design a BEV for, whether that is a passenger car or a light commercial vehicle, such as a van. “It makes it very difficult to do a quick product placement in the market,” Singh says. The project’s modular system on the other hand brings together the electronics, a gearbox, and the motor in a unit that can be scaled up according to the power requirements of a given vehicle. Put simply, that means that one of the modules could be used to drive a small city car, while a sports-car might require four modules. This approach would have an obvious effect in reducing the cost of building mass-market BEVs.

Watch the video interview on scalability of drivetrain modules with Deepak Singh, NEVS, Sweden

Drivemode’s use of an 800-volt electrical system also helps address other cost hurdles. In general, motor size is defined by torque capability. The higher-voltage systems, which run at speeds of 20,000 rpm, need less torque to achieve efficiency, meaning that they can be smaller in size and weight.

The use of smaller motors means that cars will be lighter than those with larger units and consequently can travel further on less battery power.

Batteries are currently the most expensive single item in EVs, and although their cost is falling fast, they are seen as currently making up about a quarter of the overall price.  

This leads Singh to suggest that the conventional wisdom from automakers to add more battery capacity to boost range could be the wrong approach.” Bigger batteries and longer range are not the optimal solution to go for. Most of the auto manufacturers are going in that direction, packing in more batteries for a longer range. But in my opinion, it should be a higher voltage system with ultra-fast charging and a medium sized battery not a large battery.”

This is an opinion echoed by many industry observers including JATO Dynamics auto analyst Felipe Muñoz: “Big range might be the trendy topic in the BEV world right now, but I’m sure in the near future, many consumers will prefer a more affordable BEV than a very long range one with a higher price tag.”

Higher-voltage systems such as Drivemode’s can cut charging times by up to 75 percent in vehicles using high-speed chargers. In the real world this means that a car such as the Porsche Taycan, currently the only commercial 800-volt vehicle on the market, can be charged to 80 percent of its battery capacity in just over 20 minutes.

This helps make a smaller battery range more acceptable to consumers by bringing down the time they need to charge. “It’s better to have less battery power and faster charging systems than spending one hour every time you need to fully charge your big battery,” Muñoz says.

Another cost-saving advantage of smaller high-voltage motors is a reduction in the use of precious materials such as copper, which is achieved through a decrease in electrical current to the motor. 

A small electric car (using a 400-volt electrical system) currently contains about 40 kilograms of copper, roughly four times its combustion-engine equivalent. But despite the slow take up of electrification in Europe currently, industry observers are optimistic that BEVs will reach price parity with internal combustion models this decade.

Matthias Schmidt at Schmidt Automotive Research in Berlin expects this to happen in around four years, but believes it will be down to the costs of meeting new emissions standards, rather than any dramatic fall in BEV prices, because such technology “will increase the cost per unit for ICE (internal combustion engine) technology to meet the new Euro 7 technology level.”

And while Munoz thinks parity could arrive in 2023, he expects that this will likely only be in premium segments, with parity in mass-market segments arriving later in the decade.

By David Jolley

*image credit: NEVS

Shifting to 800-volt systems: Why boosting motor power could be the key to better electric cars

13 Feb 2021

The latest results from research on 800-volt battery-driven vehicles show that this could lead to smaller, lighter, and more environmentally friendly motors. Cars using these powertrains could also be charged faster and travel further on a single charge

Sales of electric vehicles are slowly beginning to gain traction in Europe as mainstream brands including Volkswagen, BMW, Fiat, Opel and Hyundai start to roll out battery-powered models. 

But, despite a push by many governments to ban sales of new petrol and diesel cars in the next two decades in favour of full-electric vehicles, the existing technology in battery vehicles restricts their ranges and makes them more time-consuming to refuel than their combustion-engine rivals. This and their higher price continue to hamper their chances of becoming mainstream any time soon. 

For many industry observers though, developments to boost the electrical systems of battery-driven vehicles to 800-volts from the current industry standard of 400 volts could be the breakthrough that finally allows electric vehicles to move to the next level and better compete, and eventually replace, combustion vehicles. A necessary transition as Europe strives to lower vehicle emissions and tackle climate change.

Professor Peter Wells, of Cardiff University’s Centre for Automotive Industry Research, says: “As is usually the case with ‘premium’ technology options in the automotive industry, we can expect a rapid transfer to the mass market arising from competitive pressures. In some cases, manufacturers have designed-in the ability to migrate from 400 volt to 800 volts as costs fall and as competitiveness comes to require such systems.” 

Among those companies who have already embraced this technology is Volkswagen Group’s sports car brand Porsche, who have fitted an 800-volt system in their full-electric Taycan sports car, which was launched last year. For Otmar Bitsche, director of e-mobility in the automaker’s research and development unit, the reasons for opting for the higher-powered unit are clear: “Lower weight, higher efficiency and faster charging” are the major benefits to 800-volt systems, he believes. 

Charging time can be greatly reduced when using fast chargers capable of working at up to 270 kilowatts. “If the charger provides 800 volts and a minimum of 300A, the Taycan can charge from 5% to 80% in 22.5 minutes. 400V chargers typically provide 50kW only. The same charging capacity would need 90 minutes,” Bitsche explains. The automaker, which was the first to introduce an 800-volt electrical system commercially, claims a 420-kilometre range between charges for its four-door coupe-styled saloon.

While this is not hugely higher than figures achieved by rivals using 400-volt systems such as the I-Pace from Jaguar, which can cover the 354 kilometres on a single charge, the use of an 800-volt system considerably increases the possibilities to boost the range of their electric vehicles.

One such advantage is that 800-volt electrical systems allow a greater retention of power, which is normally lost through heat generated during the charging process. A higher voltage system allows a lower current to be used when charging the battery, which reduces overheating and allows better power retention in the system. This power can be used towards a longer driving range.

Higher voltage systems also offer a number of key weight- and mass-saving advantages. The reduction of copper is one of these. Electric motors are much simpler than combustion engines in construction and at their core they have a rotor, which turns in response to a rotating magnetic field created by electricity from the battery. To achieve this, electrical systems often use up to four times the amount of copper found in combustion engines. Using higher-voltage systems can lead to the amount of copper used in motors being significantly cut.

Michael Burghardt, senior project manager at AVL, a German company developing and testing powertrain technology for cars and trucks, says: “Higher voltages mean less current and less current means less copper in the car. Less copper means less weight, and this is the goal we are reaching for.” 

Burghardt is collaborating with the European Union research project Drivemode, which is seeking to develop a highly efficient and compact modular drivetrain for full-electric cars that uses the vehicle’s stored energy more efficiently through a higher-voltage electric system.

Besides reducing the weight of motors, an 800-volt system has the added advantage of reducing their mass too. Since the higher voltage allows the motors to run at speeds of 20,000 rpm, well over double that of their 400-volt siblings, they have better power density. This means that they convert electrical power to mechanical power with this speed and not high torque. “In general, motor size is defined by torque capability,” Bitsche says, which means removing torque from the equation allows motors to be much smaller. So much, in fact, that smaller high-speed motors can weigh as little as 25 kilograms, with the result that they reduce the overall weight of a vehicle, enabling it to travel much further on a single charge.

Watch the video interview on high-voltage systems in electric vehicles with Michael Burghardt – AVL, Germany

Smaller motors also mean the vehicle has additional space for batteries as Professor Wells notes: “The reduced weight of 800-volt systems will further help with increased range and acceleration performance or allow for larger battery packs with even greater range.”

Reducing the size of the motors along with optimising the efficiency of the drivetrain is central to Drivemode’s goal of producing small adaptable electric modules that consist of power electronics, a gearbox, and the motor itself. Modules that can be scaled up according to the power requirements of a given vehicle.

“The intention of the Drivemode project was to have one motor which can fit in different modular systems having one to four motors in one car,” Burghardt says.

That goal is one of many technical challenges that the project has met and overcome since it was launched. Technology derived from Drivemode is now expected to make its way into production vehicles in the next few years as the auto industry makes the move to the next generation of electric vehicles.

According to Professor Wells, the 800-volt technology will take a couple of model generations to really filter through to becoming the de facto standard, but by 2026 it can be expected to be the dominant application.

By David Jolley

PCIM digital days

6 Jul 2020

This year, PCIM Europe event will take place as digital event on 7th-8th July 2020.

Our partner SEMIKRON will participate to the Dialogue Sessions with the Poster Presenters Automotive II on Wednesday 08 July 2020, 15:00 – 16:30 and present the DRIVEMODE SiC-Inverter.

For further information, visit the event website: https://pcim.mesago.com/nuernberg/en/conference/program-speakers/program.detail.html/736/522.html

Download here the Conference Program

Towards the next generation of electric vehicles

19 Jun 2019

Electric vehicles (EVs) have made huge strides in reliability and durability since they were first introduced, and sales figures from across Europe show they’re more popular than ever before. Yet some drivers are still wary of moving from a vehicle powered by fossil fuel to an EV because of “range anxiety” – fear that the car’s battery could run out of charge, and that the existing network of charging stations is not sufficient to allay this concern.

Manufacturers and policymakers both know that assuaging this fear is an integral element to making EVs ever more common on our roads, thereby contributing to lower carbon emissions and tackling climate change. Enhancing the charging infrastructure is just one part of this approach; indeed, enabling motorists to connect their vehicles to the grid at home, and to accelerate the home charging process, are significant aspects of the overall effort to make driving EVs as seamless as possible.

Constant striving for technological advances is also gradually eroding scepticism. For example, the EU project Drivemode aims to develop a highly efficient and compact modular drivetrain for EVs that deploys the vehicle’s battery energy more effectively and optimises the drivetrain design to create a more integrated system, delivering stronger performance and reliability.

The pioneering project brings together the various components of the EV – motor, gearbox and inverter – into a single frame. This model can be adapted and fitted in all types of mass-produced electric and hybrid cars, from high-performance to light duty vehicles and everything in between.

Alexander Smirnov, a research scientist at VTT in Finland, which leads the consortium, explains that one of the major goals of the research is to make the drivetrain as compact as possible. “By reducing the weight, we can increase the running distance of the vehicle, and the way that we have attacked that problem in the project is that we are augmenting the speed of the electric motor. So by increasing the speed we can proportionately decrease the size of the e-motor”, he says.

This is achieved by the deployment of a high-voltage (600-900V) battery that bring the engine’s weight down by reducing the amount of copper needed. The drivetrain therefore augments by 50 per cent the maximum operating speed, leading to a 30 per cent increase in torque but reducing by half motor losses and charging times. It’s the kind of performance reassurance that many motorists keen to switch to EVs have been waiting for.

Jens Muller, manager at German company Semikron, which is working on the inverter, explains that the project has innovated through the refinement of high-performance materials: “We have silicon carbide as an electronic material for the switches, then we have copper for better thermal performance, silicon nitrite ceramics, but also very high performance thermal pastes, any by combining all of those and also design for high thermal performance we get this high power”.

Michael Burghart, senior project leader of AVL, a German company specialised in developing and testing electric drivetrains, adds: “Not only do the supplier and invertor of e-machines have to show over and over again that this drive will be the future, one of the main concerns is to use the resources of the planet in the best possible way. Therefore, it is always a headache to decide whether to use rare earth materials or whether to go with squirrel-cage rotor solutions.”

The Drivemode project has now reached a critical point. The consortium has devised a way of integrating a high-speed gearbox (reaching 97 per cent efficiency around nominal points), a high-speed motor (75 kW, 100 Nm, more than 20,000 rpm) and a silicon carbide inverter (20 kHz switching, 140A rms current) into a high-performance and cost-effective drivetrain module. These main elements are merged with a high-voltage battery, controls and a cooling unit to establish a solid foundation for the next generation of EVs, from buses to racing cars.

Major auto manufacturers such as Audi, Volkswagen and Jaguar have showed interest in the project. The inverter, motor and gearbox will be tested separately, says Alexander Smirnov, and then the components will be assembled into the single frame, to provide the final product of the project. By 2020, “this frame, or this single unit, will be tested by itself, and finally demonstrated in the special demonstration vehicle” he concludes.

A first opportunity to present and review the results of the tests will come at the Coiltech conference in Pordenone, in the north of Italy, where motors and transformer producers from 46 nations will gather in September 2019.

 

By Margherita Sforza

Photo credits: Michael Mroczek

19 June 2019

On the way to spur uptake of electric and hybrid mobility

4 Jun 2019

DRIVEMODE is a project aimed at developing a distributed and integrated drivetrain module (IDM), scalable to all types of mass produced electric and hybrid cars, from light and C & D passenger vehicles, to high performance and light duty vehicles.

The project partners have reached a critical point in their research; they have devised a way of integrating a high-speed gearbox (reaching 97% efficiency around nominal points), high-speed motor (75 kW, 100 Nm, more than 20,000 rpm) and SiC inverter (20 kHz switching, 140A rms current) into efficient and cost-effective drivetrain modules for distributed drive. The integrated module’s main advantages come from reduced use of materials, simplified OEM installation and optimal synergy between components. In addition the distributed drivetrain concept opens the doors for a single design to serve a variety of vehicles, with improved layout flexibility, control and functionalities.

DRIVEMODE partners met in Nuremberg and Brussels in May 2019 to share the results of each component’s design features and to take the project to the next level – manufacturing. The aim here is to achieve 30% increase in specific torque and power, 50% increase in e-motor speed, high voltage (800 V) for material reduction and fast charging and 50% reduction in losses.

To share knowledge and obtain expert insights, DRIVEMODE partners organise joint events and workshops with similar GV-04 projects (ModulED and ReFreeDrive).

Learn more about DRIVEMODE integrated drivetrain module and its components by visiting the resources openly available on the project website.

 

Electric cars: current trends make for a shocking change

7 May 2019

Electric cars are rapidly moving from the periphery of the automotive sector in the European Union to the mainstream. The sales figures alone across Europe do not necessarily justify such a bold claim, given that within the overall market, fully-electric vehicles (known as BEVs, or battery-electric vehicles) account for around 1.7 per cent of all passenger vehicles sold. But as the EU looks towards a carbon-neutral future based on green energy and zero emissions, BEVs are undoubtedly integral to the debate around Europe’s automotive future.

While that figure of 1.7 per cent may appear irrelevant, the 21,000 BEVs sold across the EU in January 2019 represent a year-on-year increase of 67 per cent, according to a report by CleanTechnica.com. Fully-electric vehicles are also surging ahead of plug-in hybrids in popularity, with figures from the same month showing that BEVs now account for almost two-thirds of all plug-in vehicles sold in the EU.

With various national incentive schemes promoting the acquisition of zero-emissions vehicles, consumers can make informed choices about the economic advantages of going all-electric. However, support from the EU, through an integrated policy framework across transport, the environment, infrastructure and regional policy, will be essential if electric vehicles are to continue their impressive growth in the market.

Giuseppe Fabri from the Department of Industrial and Information and Engineering and Economics at the University of L’Aquila in Italy, says that the future of passenger transport is inevitably fully electric: “The trend is to design fully electric cars, no longer hybrids that are still tied to fossil fuels. Many car manufacturers are thinking of producing cars in the next five-seven years that are fully electric.”

“But the main problem today is the charging infrastructure, because if you want to go today between Rome and Milan with an electric car it’s not possible. You have to stop after 300 km to recharge the car.” He adds: “In parallel with research, we need to invest in infrastructure and create fast charging systems in cities, as Norway and the Scandinavian countries are doing today.”

In fact, a study by Transport & Environment points out the disparity between northern and western Europe, where charging infrastructure is more sophisticated and more widely available than in southern and eastern Europe.

A pan-European network of charging points for BEVs is taking shape, with around five vehicles on the road for every public charging station, but the study also suggests that only five per cent of vehicle charging takes place at such points, with most charging happening privately, in people’s homes or workplaces.

The urgent need to address the dangers and consequences of climate change is a principal driver of change and innovation in the electric vehicle sector. The EU has set an ambitious target to reduce CO2 emissions from transport by 60 per cent by 2050 compared to 1990 levels. The regulatory framework at European level is designed to ensure a progressive, steady and predictable transition towards a future in which electric vehicles predominate.

EU member states are reinforcing this trend with their own policies: Sweden, the Netherlands, Ireland, France and Denmark have all pledged to ban sales of new petrol- and diesel-powered vehicles by 2030, and in France all cars powered by internal combustion engines will be banned from the roads by 2040. Regions and cities across Europe are also taking initiatives where they have the power to do so, with Brussels itself introducing rules banning diesel-powered cars from circulating after 2030.

Car manufacturers are investing in developing new electric cars, but the EU is supporting this innovation, funding 165 related projects since 2009. More recently, the European Green Vehicles Initiative is tackling the challenge of decarbonisation of road transport, and contributing to the transition to greener road transport, while boosting the competitiveness of the European economy.

Ultimately, electric cars are going to be successful if they appeal to the consumer from a visual and performance point of view. And manufacturers are only going to develop such a broad range of vehicles if they know these vehicles have the technical reliability to deliver.

In this context, the EU project DriveMode is developing the next-generation of electric drivetrains to suit different types of electric and hybrid cars. Jens Müller, research and development manager of Semikron, is part of the consortium. He told us that through the kind of technological innovation being pioneered by the project, manufacturers will have more options at their disposal to respond to consumers’ varying expectations, fostering choice in the e-vehicle market by widening the technical possibilities as much as possible.

The company is very active in the Chinese market, Mr Müller said. “We have a comparable project that is running in 50,000 units, mainly light buses in China, and we think that the European and also non-European markets will strongly benefit from technologies such as the one developed under DriveMode”.

Furthermore, Lucie Beaumel, of the European Green Vehicle Association, explains that “currently, EU research projects are not only contributing to develop prototypes, but also to improving the techniques of electric car and plug-in hybrid production, so the effect of innovation is multiplied.” Researchers and representatives from the car manufacturers will gather in Brussels in December 2019 at a conference organised by the Association to discuss innovations ways to shape European policy on improving road transport.

 

 

By Margherita Sforza

Photo credits: MikesPhotos on Pixabay

7 May 2019

Pushing design and manufacturing of electric and hybrid drivetrains to the next level

22 Oct 2018

These range from light and C & D passenger vehicles to high performance and light duty vehicles. With modularity and scalability being the core concepts behind this innovative project, DRIVEMODE will change the paradigm in electric and hybrid mobility and spur the market uptake of a compact frame composed of a high-speed gearbox, high-speed motor and SiC inverter. This integrated set-up will be mass produced with ease and will be deemed useful in different market segments.

The innovation partners gathered together for a two-day technical meeting in Ljubljana on mid-June 2018. They discussed about the project’s early achievements and fixed the module’s configuration while accounting for the most efficient combination of the components. Plenary sessions were distributed evenly with closed sessions dedicated to specific issues tackled by a few of DRIVEMODE’s technical partners.

The research output on the preliminary design of the drivetrain module were presented by Chalmers and all partners. They highlighted the optimal modularity for the system to fit different car classes. Two design concepts of the electrical motor (Permanent Magnet Synchronous machine and Inductions Asynchronous machine), two transmission concepts and two gear ratios (14.1:1 and 15.9:1) have been examined with the goal of finding the optimal configuration that meets the expected impacts in terms of energy efficiency, compactness and novelty of the module. All components will be joined together with a cooling unit to form a compact frame.

The DRIVEMODE concept will be tested and validated using a demonstration vehicle that will run on a flat road with a top speed of up to 180km/h.

To foster knowledge sharing, the project is already implementing joint activities together with like-minded GV-04 projects, to raise the different stakeholder communities’ awareness about DRIVEMODE’s innovative aspects.

The meeting has been crucial to set the pathway in identifying the components’ configuration, which will ensure DRIVEMODE in meeting the expected impacts and objectives.

Oil flows and churning torque prediction in DRIVEMODE transmission

8 Oct 2018

DRIVEMODE aims to develop a smaller and lighter drivetrain module for the automotive industry by significantly increasing the speed of the electrical motor. This brings the challenge for the transmission system to operate with a high input speed and a high gear ratio.

One critical question for design is proper lubrication. For the development of the transmission of the demonstrator unit in the DRIVEMODE project a particle based CFD software was used. The tool helps to rapidly and accurately predict oil flows and churning torque in the transmission.

Traditionally, the lubrication system of a gearbox is optimized through physical testing, using a plastic housing. This is a time consuming and expensive method which does not allow multiple iterations of the design. Through the use of this tool, multiple modifications of the housing can be virtually tested. This does not eliminate the need for physical testing of the system, but helps to find the optimal solution.

 

 

European Green Vehicle Initiative – about DRIVEMODE

24 Feb 2018

The electrical machine will have a dry rotor direct liquid cooling system integrated with the cooling system for the SiC drive. This traction module can be mechanically coupled with an axle of a low performance electric/hybrid vehicle, or several units could be coupled directly with the wheels for a high performance vehicle or a light-duty vehicle or a bus. Economic feasibility of mass-manufacturing of different electric machine topologies will be studied to choose the best trade-off between performance, manufacturing cost, and efficiency in the selected performance range.

Continue reading at EGVI website.