Showing posts with label Airbus. Show all posts
Showing posts with label Airbus. Show all posts

Friday, August 21, 2020

News: AMRC keeping the space industry at the cutting edge

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Composite engineers at the University of Sheffield Advanced Manufacturing Research Centre (AMRC) were singled out for praise by Airbus Defence and Space bosses for the speed, efficiency and accuracy of their work on critical satellite components which helped "keep UK industry moving" during the Covid-19 pandemic lockdown.

Kevin Clynes, who heads up Research and Process Technology Engineering for the Airbus division, said the complex machining operation on the base cone for its new satellite was done "during a very difficult time with speed, efficiency and accuracy" by engineers from the Composite Centre at the AMRC in Rotherham.

The AMRC Composite Centre is a state-of-the-art facility for advanced composite manufacturing research and development, based in a dedicated extension to the AMRC Factory of the Future, which is on the Advanced Manufacturing Park (AMP) in Rotherham.

"Despite the restrictions and challenges of the Covid-19 lockdown, it was crucial to Airbus Defence and Space to continue with operations,” says Kevin. "This was not only about keeping our business going but also about keeping our customers, partners and suppliers operating as well.

"When we contacted the AMRC, it was clear they wanted to assist us with this project to keep our business plan on schedule. This was very much appreciated and successfully demonstrated how we could work together, communicating remotely, to achieve this. The AMRC showed great effort and commitment to keep UK industry going during this challenging time."

This work forms the latter stages of two years of research collaborations between Airbus Defence and Space and the AMRC that initiated the establishment of a method to machine aluminium honeycomb with composite skins with zero defects.

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Dr Kevin Kerrigan, who heads up composite machining research at the AMRC, said: "It was an honour for the AMRC to be able to support the team at Airbus Defence and Space during these challenging times and to witness translational research deliver value back to UK manufacturing."

The cone is a key component of the Eurostar Neo, a new high performance communication satellite developed by Airbus Defence and Space that combines increased payload capacity, more efficient power and thermal control systems with faster production time and reduced cost.

Due for launch in 2021, the cone forms the central structure and base of the service module of the satellite, which houses the propulsion tank. It is made from aluminium honeycomb, which is sandwiched between an inner and outer skin made of carbon fibre reinforced polymer (CFRP).

The AMRC team took on the challenge to machine 288 holes and three larger access panels, whilst achieving tolerances smaller than the diameter of a human hair into the already high-value-add component. Further machining work included machining flats on upper and lower rings that had been bonded to the cone.

John Halfpenny, technical lead at the AMRC Composite Centre, worked with AMRC machine tool operator Lewis Nicholson to carry out the complex job; operating under strict lockdown conditions and stringent health and safety guidelines, and all while maintaining the necessary social distancing measures.

"This project was a little bit special because we had to come in under lockdown," explains John. "We knew it was important because Airbus had been given permission from the government to do the work during lockdown as it is industry specific and critical to their work packages.

"The cone itself is quite large, 1.3m high, but a very lightweight structure; to give a sense of size, four people could stand inside it.  It is a typical sandwich structure with three layers - carbon fibre on the outer and inner surfaces, with aluminium honeycomb layer in the middle - and quite difficult to machine without damaging the super lightweight, high-value structure."

John explained that while carbon fibre is a strong and light composite material, it is very easy to damage the component when machining features. "The carbon fibre has a tendency to splinter and break away if machined incorrectly," he said. "Airbus had a zero defect feature requirement, which meant no splintering on entry and exit of all features. This is critical to the component, so the AMRC developed techniques to eliminate all delamination.

"Also, another requirement was the honeycomb structure had to have a clean burr-free cut. If machined with conventional tools and drills, it would be very easy to damage the thin sandwich structure so specialist tools were sourced, that were capable of producing a really fine, neat edge on the honeycomb."

After every ten holes, a visual inspection was carried out for delamination and measurement of diameter. This was to ensure tool wear had no effect on the quality of holes.

John explained: "OSG, a tier one research partner, was the tool supplier on this project and they have worked with us to develop the process. We carried out some machining trials with their tools and found they were really good; they are solid carbide diamond coated tools which are very hard-wearing and the geometry of the tools is unique as well."

The machining work was performed using the Starrag STC 1250, 5-axis machine tool which Kevin Clynes says was perfectly suited to the task.

"The holes have a very tight tolerance requirement on diameter size of ±0.015mm, as well as positional accuracy requirement of ±0.05mm.The AMRC’s Starrag machine gave us the required volume and accuracy to carry out these machining operations."

Once complete, the cone was delivered to Airbus' Stevenage site, where metal inserts were accurately bonded into the carbon holes machined by the AMRC to give precision fixing points for brackets and panel attachments.

The cone project is the culmination of two years of "small steps" of incremental research and development carried out by the AMRC for Airbus Defence and Space in which various-scaled cones were machined using a newly established machining process developed for Airbus Defence and Space as part of its manufacturing development programme.

John said: "We got the order for the cone before Covid; it was a critical project for us to complete and to help the industry keep moving during lockdown. We knew that if this wasn't machined on time it could have delayed the final assembly process. The satellite is due to launch in 2021 - slots for launches like this are booked years in advance, so we knew there were deadlines to meet. That's why, as an organisation, we were determined to deliver and make sure we could complete the machining to keep Airbus on schedule."

The Eurostar Neo product line has been developed in the frame of ESA's Advanced Research in Telecommunications Systems (ARTES) programme, in cooperation with space agencies from ESA Member States, particularly CNES and the UK Space Agency.

AMRC website

Images: AMRC

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Friday, February 15, 2019

News: Rolls-Royce welcomes Emirates order

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Rolls-Royce has secured an order for its iconic Trent 7000 engines to power 40 Airbus A330neo aircraft from Emirates, the largest airline in the Middle East.

But the world-renowned engineers say they are saddened by the decision by Airbus to end deliveries of the A380.

Emirates has also ordered 30 Airbus A350 aircraft, powered by the Trent XWB and Rolls-Royce will also provide Trent 900 engines for a further 14 Airbus A380s, taking the total Emirates A380 fleet powered by Trent 900 engines to 33 aircraft.

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The engines will contain turbine blades manufacturing in Rotherham at Rolls-Royce's Advanced Blade Casting Facility (ABCF), the £110m facility on the Advanced Manufacturing Park (AMP).

The Nickel-based superalloys are made from single crystals using the very latest manufacturing techniques. These SX blades generate the power of a Formula 1 racing car and temperature within the high pressure turbine is 1,700 degrees centigrade, hotter than the melting point of the turbine blades themselves, so they have to be coated with a special ceramic and cooled with air passed through the discs and out of a series of precise holes in the blade.

Chris Cholerton, president – civil aerospace at Rolls-Royce, said: "We welcome the news that Emirates is further extending its relationship with Airbus and Rolls-Royce. The addition of Airbus A330-900 and Airbus A350-900 aircraft to the Emirates fleet will make the airline one of the largest users of Trent engines in the world and we look forward to continuing to support them and their customers."

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The agreement supersedes previous deals with Emirates for a total of 52 A380 aircraft powered by the Trent 900 - described in 2015 as "one of the largest ever export orders for a UK company."

With Emirates reducing its A380 orderbook, and with a lack of order backlog with other airlines, Airbus said that it will cease deliveries of the A380 in 2021.

The four-engine A380 is the world's largest passenger airliner. Rolls-Royce secured more than 50% market share on the aircraft, in addition to being selected by the majority of Airbus A380 customers.

Cholerton added: "The A380 is a world class feat of engineering, much loved by passengers, and we are obviously saddened that deliveries will come to an end. We are very proud to have supported the aircraft with our Trent 900 engine. We look forward to supporting the fleet, as the A380 continues to delight travellers, for many years to come."

Rolls-Royce website

Images: Airbus

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Wednesday, November 7, 2018

News: Rolls-Royce powers latest Airbus jetliner on first flight

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The Rolls-Royce Trent 7000, the latest member of the Trent family of engines, has successfully powered the Airbus A330-800neo into the skies for its first test flight.

As the second member of the A330neo Family, the A330-800 is the most efficient, longest-range entry-level widebody aircraft. The Trent 7000 is the exclusive engine for the A330neo and the seventh in a Trent family that has now accumulated more than 125 million engine flying hours.

The 68-72,000lb thrust Trent 7000 is expected to deliver a step change in performance and economics compared to the Trent 700. Benefitting from a bypass ratio double that of its predecessor, the Trent 7000 will improve specific fuel consumption by ten per cent, and will significantly reduce noise.

Chris Davie, programme director - Trent 7000 at Rolls-Royce, said: "We are proud to power this latest version of the A330 family and congratulate Airbus on this achievement. The Trent 7000 is the latest chapter in a Trent success story and takes an outstanding aircraft to the next level of performance."

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With 25% fuel consumption than previous generation aircraft, A330neo jetliners can travel farther with lower operating costs. For the A330-800, this results in a range of up to 8,150 nautical miles, enabling non-stop flights between Southeast Asia and Europe, as well as transpacific travel between Southeast Asia and the US West Coast.

Guillaume Faury, president of Airbus Commercial Aircraft, said: "The A330-800 is an exceptionally versatile "route-opener," offering unbeatable economics for airlines – encompassing everything from short to very-long haul widebody missions. We look forward to the successful flight-test campaign, leading to certification next year."

The Trent engines include key components manufactured by Rolls-Royce in Rotherham.

The most advanced turbine blade casting facility in the world was officially opened on the Advanced Manufacturing Park (AMP) in Rotherham in 2014. The 150,000 sq ft facility employs around 150 people and has the capacity to manufacture more than 100,000 single crystal turbine blades a year.

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The advanced turbine blade castings made in Rotherham rotate at 12,500 rpm, with their tips reaching 1,200mph – nearly twice the speed of sound. At take off each of the engine's high pressure turbine blades generates around 800 horsepower per blade - similar to a Formula One racing car.

There are two types of turbine blade manufactured at the Rotherham facility: high pressure (HP) and intermediate pressure (IP) single crystal blades. There are over 65 in every iconic Trent engine and 182 turbine blades in each Trent XWB engine.

Rolls-Royce website
Airbus website

Images: Airbus

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Monday, July 23, 2018

News: Rolls-Royce flying high at Farnborough

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Plans for a flying taxi, powering Airbus' whale-shaped BelugaXL and recreating its engines in Lego may have made the headlines for Rolls-Royce at the Farnborough International Airshow but it is the latest accreditations and constant stream of contract announcements for its Trent engines that are powering the world-renowned engineers to new heights.

A month on from confirming a "fundamental restructuring" programme that affects 4,600 jobs, and still also reeling from problems from earlier iterations of its Trent 1000 engines, Rolls-Royce has used the trade show to announce new deals and discuss key milestones.

Rolls-Royce's £110m facility on the Advanced Manufacturing Park (AMP) in Rotherham is the most advanced turbine blade casting facility in the world. The 150,000 sq ft facility employs around 150 people and has the capacity to manufacture more than 100,000 single crystal turbine blades a year.

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At Farnborough, which attracts 100,000 visitors over the trade days alone, Rolls-Royce announced a number of new deals: STARLUX Airlines of Taiwan selected 17 and Sichuan Airlines selected ten Airbus A350 aircraft, which are powered by the Trent XWB; AirAsia X selected a further 34, and Uganda Airlines selected two Airbus A330neo aircraft, powered by the Trent 7000 engine; Hi Fly, a Portuguese charter airline headquartered in Lisbon, becomes a new operator of Rolls-Royce Trent 900 engines following the addition of an Airbus A380 to its growing fleet.

The A330neo was a star attraction at Farnborough Airshow, where it made its first appearance. Airbus itself won further new business for 431 aircraft (93 firm orders and 338 MoUs).

The A330neo is exclusively powered by the Trent 7000 which brings together more than 50 million flying hours of experience from the Trent 700, which powers the original version of the A330. It combines architecture from the Trent 1000 TEN – the latest version of the Trent 1000 engine – and the latest technology from the Trent XWB.

Trent engines contain turbine blades made in Rotherham.

The A330neo has received its "ticket to fly" from the European Aviation Safety Agency (EASA) this month, with Rolls-Royce also delivering the first production engines to the Airbus facility in Toulouse, France.

The Trent 7000 is the fourth Rolls-Royce engine to receive formal certification in just 12 months, following in the footsteps of the Trent 1000 TEN, Trent XWB-97, and Pearl 15.

Chris Cholerton, President – Civil Aerospace at Rolls-Royce, said: "This is another great milestone in a period of unprecedented activity for us. Certifying and delivering the Trent 7000 engine further strengthens our position on the latest generation of aircraft and I would like to thank everyone at EASA and Airbus, as well as my own Rolls-Royce colleagues, who have worked so closely to get to this point.

"We now look forward to supporting Airbus and TAP Air Portugal as they prepare for the aircraft to enter into service later this year."

The 68-72,000lb thrust Trent 7000 will deliver a step change in performance and economics compared to the Trent 700. Benefitting from a bypass ratio double that of its predecessor, the Trent 7000 will improve specific fuel consumption by ten per cent, and will significantly reduce noise.

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Also this month, Rolls-Royce Trent 700 engines powered Airbus' new BelugaXL air transporter (pictured) on its first flight from Toulouse, France.

The BelugaXL is based on an Airbus A330 design and is used to carry complete sections of Airbus aircraft from different production sites and to the final assembly lines in Europe.

Rolls-Royce website

Images: Airbus / Rolls-Royce

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Friday, February 23, 2018

News: Rolls-Royce celebrates delivery of first A350-1000

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Precision aerospace parts manufactured in Rotherham have been delivered to Qatar Airways as the airline receives the first Airbus A350-1000 to enter service, powered by Rolls-Royce Trent XWB-97 engines.

The Trent XWB-97 is the 97,000lb higher thrust version of the Trent XWB, the world's most efficient large civil aero engine flying today and is also the fastest selling widebody jet engine ever, with over 1,700 engines ordered by 45 customers worldwide.

The other version of the Trent XWB, rated at 84,000lb, powers the A350-900 which first entered service in January 2015, again with Qatar Airways as the global launch customer. Today 290 of these engines are in service with airlines worldwide, having accumulated more than 1.3 million flying hours and achieving the best entry into service performance of any widebody engine, with outstanding reliability.

Chris Cholerton, Rolls-Royce, President – Civil Aerospace, said: "We are very proud to have worked with Qatar Airways and Airbus to deliver the engines for the latest version of the A350 XWB. Both are highly valued partners to Rolls-Royce and today marks another important step forward in our relationship together.

"We are excited to see the latest version of the Trent XWB entering service with Qatar Airways and look forward to this engine continuing to provide outstanding levels of reliability."

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The Trent engines include key components manufactured by Rolls-Royce in Rotherham.

The turbine blades made in Rotherham rotate at 12,500 rpm, with their tips reaching 1,200mph – nearly twice the speed of sound. At take off each of the engine's high pressure turbine blades generates around 800 horsepower per blade - similar to a Formula One racing car.

The most advanced turbine blade casting facility in the world was officially opened on the Advanced Manufacturing Park (AMP) in Rotherham in 2014. The 150,000 sq ft facility employs around 150 people and has the capacity to manufacture more than 100,000 single crystal turbine blades a year. The advanced turbine blade castings are produced for the company's most modern, high-thrust engines.

There are two types of turbine blade manufactured at the Rotherham facility: high pressure (HP) and intermediate pressure (IP) single crystal blades. There are over 65 in every iconic Trent engine and 182 turbine blades in each Trent XWB engine.

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Cholerton, added: "We are really proud of what this engine has delivered for our customers and to support that success we've invested heavily in technology and innovation, in manufacturing lines and new test facilities. At the peak we will be delivering one Trent XWB every working day from our facilities in Derby and Berlin.

"For the Trent XWB-97 we've delivered an extra 13,000lbs of thrust, and that thrust comes from the fan rotating more quickly and the compressors rotating more quickly. And the turbine needs to work harder to do that. But our engineers were up to that challenge and we've managed to improve the fan system - get more airflow through the same diameter, we've grown physically the core of the engine, and we've inserted new materials and coatings to protect the engine life."

In Rotherham, making a blade as a single crystal using a modified version of the directional solidification technique eliminates grain boundaries, a source of weakness in a high stress application.

Single crystal casting, exotic alloying additions and protective coatings have enabled Rolls-Royce to increase metal temperatures by approximately 300°C over the last 50 years, a figure that can be doubled when the temperature of the gas stream itself is considered.

Rolls-Royce website

Images: Airbus

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Thursday, October 19, 2017

News: Rolls-Royce powers Airbus A330neo first test flight

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The Trent 7000 engine from Rolls-Royce, complete with key components manufactured in Rotherham, has powered the new Airbus A330neo into the skies for its first test flight.

The innovative engine, the exclusive power plant for the A330neo, is the seventh member of the Trent family which has become the engine of choice in the wide body market over the last 20 years.

The flight in Toulouse also marked an important milestone for Rolls-Royce as it celebrates its third "first flight" in less than 12 months, the others being the Trent XWB-97 and Trent 1000 TEN, an unprecedented achievement in the aerospace industry. Each programme has brought together more than 20,000 parts to create an engine that then undergoes rigorous testing at a number of test beds and facilities around the world.

Before the first flight, the Trent 7000 has undergone a series of ground tests that has included: altitude, icing, cross-wind, noise and cyclic testing in USA, and endurance, operability and functional performance testing in UK.

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Eric Schulz, Rolls-Royce, President – Civil Aerospace, said: "This is a great moment for Airbus and Rolls-Royce and I am proud to see the latest member of the Trent family power this outstanding aircraft for the first time today. We have helped Airbus create a new product that offers customers a transformation in performance and economics. We are now focused on supporting the flight test programme and ensuring our customers have a smooth entry into service."

Drawing on the technology and experience of the most advanced family of engines in the world, key components include the turbine blades which rotate at 12,500 rpm, with their tips reaching 1,200mph – nearly twice the speed of sound. At take off each of the engine's high pressure turbine blades generates around 800 horsepower per blade - similar to a Formula One racing car.

The most advanced turbine blade casting facility in the world was officially opened on the Advanced Manufacturing Park (AMP) in Rotherham in 2014. The 150,000 sq ft facility employs 150 people and has the capacity to manufacture more than 100,000 single crystal turbine blades a year. The advanced turbine blade castings are produced for the company's most modern, high-thrust engines.

There are two types of turbine blade manufactured at the Rotherham facility: high pressure (HP) and intermediate pressure (IP) single crystal blades. There are over 65 in every iconic Trent engine and 182 turbine blades in each Trent XWB engine.

Rolls-Royce website
Airbus website

Images: UKSE

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Friday, November 25, 2016

News: Rolls-Royce powers new Airbus on first flight

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The latest version of the Rolls-Royce Trent XWB, the most efficient large aero engine flying in the world today, has powered the Airbus A350-1000 aircraft to the skies for the first time.

The Trent XWB-97 is the sole powerplant for the longer range A350-1000, which will enter service next year. Key parts for the Trent XWB family are manufactured at Rolls-Royce's £110m Rotherham facility.

The first test flight, which took place at Toulouse, France, marks another milestone for the highly successful Trent XWB programme. The Trent XWB-84 has already delivered outstanding performance and reliability since it first went into service in January 2015.

The Trent XWB, specifically designed for the A350 XWB, is the fastest-selling widebody engine ever, with more than 1,600 already sold.

During more than four hours aloft, the A350-1000, the longest-fuselage version of the A350 XWB that seats 366 passengers, demonstrated the performance and efficiency that will be appreciated by airline and aircraft leasing customers worldwide – 11 of which already have ordered 195 A350-1000s from the Middle East, North America, Asia, Europe, Latin America and the Caribbean.

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Eric Schulz, Rolls-Royce, President – Civil Aerospace, said: "This is a great moment for Airbus and Rolls-Royce and I am proud our engines power this outstanding programme and this particular flight today. We are absolutely committed to continue to deliver new types of engines to meet the evolving needs of the industry."

Didier Evrard, Airbus EVP of Programmes, added: "Today's successful A350-1000 first-flight is an encouraging milestone for our newest and largest member of the A350 XWB family. Over the months ahead we look forward to a successful flight-test campaign, together with our partner Rolls-Royce – whose new Trent XWB-97 engine promises to deliver the performance to help make this aircraft the most economically efficient and capable in its class."

Almost half of the value of the Trent XWB engine consists of parts made in the UK by Rolls-Royce and its suppliers. Rolls-Royce manufacturing plants in the UK contributing to the engine are located at Ansty, Barnoldswick, Birmingham, Bristol, Derby, Hucknall, Inchinnan, Nuneaton, Rotherham, Sunderland and Washington.

Two types of turbine blades are manufactured at the Rotherham facility: high pressure (HP) and intermediate pressure (IP) single crystal blades. The blades are "grown" in a special process which ensures that they are created from a single metal crystal to maximise their strength. These SX blades generate the power of a Formula 1 racing car.

The most advanced turbine blade casting facility in the world was officially opened on the Advanced Manufacturing Park (AMP) in Rotherham in 2014. When fully operational in 2017, the 150,000 sq ft facility will employ 150 people and have the capacity to manufacture more than 100,000 single crystal turbine blades a year.

Rolls-Royce website
Airbus website

Images: Airbus


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Tuesday, November 22, 2016

News: AMRC to be replicated in North Wales

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Having showcased its ground-breaking facilities to the First Minister of Scotland, Nicola Sturgeon, earlier this month, the University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing, is also playing its part in a new Advanced Manufacturing & Research Institute in Wales.

Based on the Advanced Manufacturing Park (AMP) and a partner in the HVM Catapult (the Government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors. It is a partnership between industry and academia, which has become a model for research centres worldwide.

The AMRC has worked with Deeside Enterprise Zone Advisory Board, Swansea University, and Coleg Cambria to develop the new Institute in conjunction with SMEs and large companies.

The Institute will focus on research into and development of advanced manufacturing techniques and production processes for advanced manufacturing sectors including aerospace, automotive, nuclear and food. It will also address training and skills needs across industry.

Airbus will be the anchor tenant for the new Institute, which will incorporate a state of the art research and development facility at the European aircraft manufacturer's Broughton plant, where it is working with the AMRC to develop new wing production technology as part of the Wing of the Future programme.

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Colin Sirett, CEO of the AMRC and the former head of research at Airbus, said: "The £20m investment by the Welsh Government, combined with the £10m from the project partners, will give an important boost to the competitiveness of the advanced manufacturing supply chain in Wales.

"The new institute's impact will go far beyond aerospace, supporting both the automotive and nuclear industries in Wales.

"It also encompasses sectors which have not traditionally been thought of as part of advanced manufacturing, which can, nevertheless, reap major benefits from the new techniques and technologies we will be developing."

The Institute will operate as a single entity, split between a proposed 4,500 sq m state of the art hub R&D facility in Broughton and a 1000 – 1,500 sq m networking, training, business development and advice facility in close proximity to the Deeside Industrial Park.

The AMRC attracts paid industry members at different tiers, keen to make use of the world-class machines and facilities. The model also enables the centre to secure European and Government funding for a diverse range of cutting edge technologies, from shaped metal deposition in the aerospace industry to the use of bio-composites in the automotive industry.

The AMRC employs around 500 people and has helped the University of Sheffield to overtake the University of Cambridge for engineering research income. The model has been replicated in Denmark, Australia, Italy, the Netherlands, Germany and India.

AMRC website

Images: Airbus


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Monday, October 17, 2016

News: Prepare for take-off at the AMRC

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Top aerospace companies will be landing at University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing this week as the Sheffield Branch of the Royal Aeronautical Society (RAeS) hold their 150th anniversary celebrations.

Based on the Advanced Manufacturing Park (AMP) in Rotherham and a partner in the HVM Catapult (the Government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors. It is a partnership between industry and academia, which has become a model for research centres worldwide.

The RAeS exists to further the advancement of aeronautical art, science and engineering around the world. Celebrating the society's formation in 1866 as the world's only professional body dedicated to the aerospace community, the Sheffield branch will be looking back 150 years, and forward up to 50 years with events on the theme of "innovative firsts" in aerospace.

Members of the public are invited to check into the arrivals lounge of the pop-up airport at the AMRC and check out the two "hangers" of demonstrations, exhibits and information stands telling the rich history and future of aviation and the aerospace industry in the local area.

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Guests such as Boeing, BAE Systems, Rolls-Royce, the Royal Air Force, South Yorkshire Aircraft Museum, the Vulcan to the Sky Trust and Avian Hang Gliders will be on site, showcasing the technologies and innovations in aerospace technology that have defined the progression of aviation.

There will be outdoor displays about heritage aircraft and engines to enjoy, including display engines such as a sectioned Merlin Mk3 and Adour jet engine from Rolls-Royce Heritage, a replica 1916 Blackburn seaplane, a fully restored Westland Whirlwind cockpit and more.

The AMRC has worked on research projects including developing the "Wing of the Future" with Airbus, helping GKN to create lighter aircraft structures, and making a £7m+ investment in large scale titanium castings. The AMRC and the University of Sheffield are amongst a number of partners who carry out research and development to reduce carbon emissions by using lightweight composite materials to make Rolls-Royce engines.

Craig Atkins, a development engineer at the AMRC, is a committee member of the Sheffield branch of RAeS and will be presenting on the evening.

Atkins said: "The event will bring together engineers and non-engineers to celebrate aviation history and achievements. They will have an opportunity to talk with representatives from industry, tour and learn more about the AMRC and discuss local aviation with museum staff, volunteers and members of the aviation community in the Sheffield region."

The celebrations open to the public from 5pm on Tuesday October 18.

AMRC website

Images: AMRC


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Monday, May 16, 2016

News: Rolls-Royce lands another XWB order

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Rolls-Royce has despatched the first "shipset" of four engines as part of its largest ever order, for Emirates, and has also welcomed a new deal with China Eastern.

The £6.16 billion deal, secured last year, is to provide Trent 900 engines and TotalCare service to the largest airline in the Middle East, for 50 Emirates A380s, the first of which will enter service later this year.

As part of one of the largest ever export orders for a UK company, the Trent 900 engines left the Rolls-Royce site at Derby last week where they were assembled, for Airbus in Toulouse, France, where they will be fitted to an A380 aircraft.

Eric Schulz, president – civil aerospace ar Rolls-Royce, said: "This is an important milestone in delivering the largest order in our history for a highly-respected customer. We look forward to celebrating Emirates' first Rolls-Royce powered A380 flight and ensuring the entire fleet has a smooth entry into service."

The most recent deal sees China Eastern select 20 Airbus A350 XWB aircraft, which is powered by the Trent XWB engine. The Trent XWB is the world's most efficient large civil aero engine and more than 1,500 engines have already been sold to 40 customers. It powered the first A350 XWB aircraft into commercial service in 2015.

Dominic Horwood, director, customers and services – civil aerospace at Rolls-Royce, said: "We welcome this decision by China Eastern to select the A350 XWB. We now look forward to powering the aircraft with our Trent XWB engine."

With this latest order, Airbus has recorded 803 firm orders for the A350 XWB from 43 customers worldwide, making it one of the most successful wide-body aircraft ever. So far 20 A350 XWBs have been delivered to five customers worldwide.

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The latest Trent aero engines contain turbine blades manufactured at the most advanced turbine blade casting facility in the world, which was officially opened on the Advanced Manufacturing Park (AMP) in Rotherham in 2015. When fully operational in 2017, the £110m, 150,000 sq ft facility will employ 150 people and have the capacity to manufacture more than 100,000 single crystal turbine blades a year.

There are two types of turbine blade manufactured at the Rotherham facility: high pressure (HP) and intermediate pressure (IP) single crystal blades. The capacity is set to increase to 200,000 blades a year when the pioneering manufacturing process has been proven.

At Rolls-Royce's Advanced Blade Casting Facility (ABCF) the blades are "grown" in a special process which ensures that they are created from a single metal crystal to maximise their strength. These SX blades generate the power of a Formula 1 racing car.

The turbine extracts energy from the hot gas stream received from the combustor in high-thrust aero engines. Turbine blades convert the energy stored within the gas into kinetic energy. It is required to withstand centrifugal loads of up to ten tonnes while operating at temperatures in excess of the melting point of the alloy. One HP blade lasts five million flying miles before being replaced.

Using alloys that are more expensive than silver, the temperature within the high pressure turbine is 1,700 degrees centigrade, so they have to be coated with a special ceramic and cooled with air passed through the discs and out of a series of precise holes in the blade.

Despite having a growing order book that tops £76.5bn, Rolls-Royce has been forced to issue a number of profit warnings and restructure its aerospace business as it negotiates a transition to newer engines, as engines such as the Trent 700 approach the later stage of their delivery lifecycle.

The Rotherham facility is gearing up to deliver blades for the next generation of Trent engines, including the Trent XWB engine which contains 182 HP and IP turbine blades.

Rolls-Royce website

Images: Rolls-Royce

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Tuesday, March 8, 2016

News: Further growth at AMRC

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A period of managed growth is being predicted at The University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing, by its new CEO.

Based on the Advanced Manufacturing Park (AMP) in Rotherham and a partner in the HVM Catapult (the government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors. It is a partnership between industry and academia, which has become a model for research centres worldwide.

Former Airbus head of research for the UK, Colin Sirett has recently started in post as part of a new corporate structure that sees executive dean Prof Keith Ridgway, CBE, commercial director Adrian Allen, OBE, and projects director, John Baragwanath, OBE, become executive directors of the AMRC Group.

In addition to being head of research for Airbus in the UK, Colin Sirett is chairman of the National Composites Centre steering board and deputy chairman of the Aerospace Technology Institute Technology Advisory Group. He is a Fellow of the Royal Aeronautical Society and sits on the Learned Society Board. Prior to becoming director of research for Airbus, he was head of the landing gear product delivery team for the A350XWB Programme.

Airbus joined the AMRC as a Tier One member having previously worked together on the Integrated Wing Project, a previous R&D project lead by Airbus. They are both partners in a project to develop a new corrosion-resistant stainless steel alloy for the possible use in future landing gear components.

The ground-breaking centre set out plans to more than double its turnover to in excess of £80m over the next five years.

Colin Sirett, CEO at the AMRC, said: "The AMRC can not only drive technological development, it can also translate it into production technology that can go straight onto the shop floor at companies around the world – and that, I believe, makes the AMRC quite unique.

"The organisation has grown significantly and there is plenty of scope for further growth.

"It would be all too easy to say things are going fine, let's keep things as they are and just tick over – but that's not in the nature of anyone at the AMRC.

"Everyone wants to push hard and that means there will be further growth, but it cannot be unconstrained, it has to be managed. That's my key role; making sure we face up to the challenges of growth and turn the organisation into a strong business for the future and a business that can keep on growing."

Sirett's connections with the AMRC stretch back to the organisation's early days, not long after he joined landing gear specialist Messier Dowty – now Messier-Bugatti-Dowty.

The company was bidding to win business in North America and seeking to supply Boeing’s commercial aircraft operations for the first time, after establishing a foothold with its defence arm.

Boeing had just selected a brand new Titanium alloy for commercial landing gear, which could be used to make components with larger cross sections, but was so new that no cutting data was available.

AMRC's work with Messier-Dowty cut the time needed to machine major landing gear components from the new alloy by 80% and led to the company securing the contract to make landing gear for Boeing's 787 Dreamliner.

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Monday, November 30, 2015

News: Airbus research boss lands new job at AMRC

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The University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing, is gearing up for further growth at home and abroad, unveiling a new corporate structure and appointing a high-flying chief executive officer.

Based on the Advanced Manufacturing Park (AMP) and a partner in the HVM Catapult (the government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors. It is a partnership between industry and academia, which has become a model for research centres worldwide.

It is a year since Prof Keith Ridgway CBE, executive dean of the AMRC, outlined plans for the ground-breaking centre to more than double its turnover to in excess of £80m over the next five years.

Colin Sirett head of research for Airbus in the UK and a long-time supporter of the work of the AMRC will take over as CEO from the start of February.

Following his appointment, executive dean Prof Keith Ridgway, CBE, commercial director Adrian Allen, OBE, and projects director, John Baragwanath, OBE, will become executive directors of the AMRC Group.

The group spans all of the 560 employee, £50m turnover operations of the AMRC and the Nuclear AMRC, the AMRC Training Centre, AMRC Casting Centre and Cti Ltd.

Prof Ridgway, said: "We've experienced phenomenal growth since we started out with just a dozen people 14 years ago, but every time we think about consolidating, more opportunities come along.

"This year alone we have embarked on a major development on Sheffield Business Park, expanded our training centre, started building the biggest facility for making aerospace components in Europe and launched a joint venture to establish an AMRC in Korea.

"We are in talks about taking the AMRC brand to other regions and other parts of the world and we continue to see opportunities to expand our core operations.

"As executive directors of the AMRC Group, Adrian, John and myself will focus on developing the AMRC brand, expanding the AMRC in new locations and developing major new initiatives – all of which should bolster the Sheffield region's place at the heart of global innovation in advanced manufacturing.

"Colin Sirett will be a tremendous asset for the AMRC. He shares the AMRC's aims and ambitions and understands our culture.

"He has already made a major contribution to our success, not least as a key member of the team that helped Messier Dowty win the order to supply the landing gear for the Boeing 787, which was a critical event in the formation and growth of the AMRC."

In addition to being head of research for Airbus in the UK, Colin Sirett is chairman of the National Composites Centre steering board and deputy chairman of the Aerospace Technology Institute Technology Advisory Group. He is a Fellow of the Royal Aeronautical Society and sits on the Learned Society Board. Prior to becoming director of research for Airbus, he was head of the landing gear product delivery team for the A350XWB Programme.

Airbus joined the AMRC as a Tier One member having previously worked together on the Integrated Wing Project, a previous R&D project lead by Airbus. They are both partners in a project to develop a new corrosion-resistant stainless steel alloy for the possible use in future landing gear components.

Colin Sirett (pictured) said: "The AMRC has grown over the last 14 years by delivering technology and productivity impacts direct into global industries. This growth will continue, and it is an honour and privilege to be part of steering the enterprise through its next chapter, and ensuring the next generation of engineers are an intrinsic part of that growth."

Professor Ridgway added: "With Colin now in post and Mike Tynan, former CEO of Westinghouse leading nuclear developments as the CEO of the Nuclear AMRC we have a tremendous management team in place with experience of leading major global organisations and a team capable of taking the AMRC to our next stage of development."

In addition to Sirett's appointment, the head of the AMRC's Machining Group, Dr Sam Turner becomes AMRC chief technical officer. Dr Turner is an authority on machining Titanium alloys, and holds a Masters degree in Mechanical Engineering from the University of Sheffield in addition to his PhD in Titanium machining.

As CTO he will develop technologies and projects across the AMRC and work closely with the High Value Manufacturing Catapult, a consortium of seven leading manufacturing and process research centres, backed by the UK's innovation agency, Innovate UK.

In addition to becoming an executive director, John Baragwanath becomes interim director of the Medical AMRC, following the retirement of Derek Boaler. Prof Ridgway said: "Derek did excellent setting up both the AMRC's Design & Prototyping Centre and the Medical AMRC and we wish him well in his retirement."

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Thursday, October 8, 2015

News: AMRC developing new aerospace steel

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Research engineers at the University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing in Rotherham are working on a project to develop a new corrosion-resistant stainless steel alloy for the possible use in future landing gear components.

Leading aircraft manufacturer, Airbus, is working in partnership with Messier-Bugatti-Dowty, Carpenter Technology and The AMRC in developing the maturity of a new alloy known as "CRES" which partners hope could replace existing low-alloy carbon steels and titanium alloys for future aircraft landing gear.

Based on the Advanced Manufacturing Park (AMP) in Rotherham and a partner in the HVM Catapult (the government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors.

As part of the collaborative evaluation, nine A320 main gear components have been forged in the new steel and used for further materials development, including establishing properties of the as-manufactured materials and define the optimum industrialisation route. Furthermore, two components are being manufactured to a "final finish." In the future, the team hopes to assemble a fully CRES landing gear for in-service evaluation.

The new CRES steel, which avoids the need to use traditional cadmium and chromate coatings, offers intrinsic corrosion resistance and its strength is comparable to current steels. It could be available for less than half the price of titanium alloys.

CRES steels also improve the cost of ownership due to the reduction of in-service corrosion. Moreover, thanks to a large improvement in fracture toughness and stress corrosion cracking resistance, they are much more environmentally robust.

The work on potential new landing gear echoes previous R&D at the AMRC. When bidding for the landing gear for Boeing's new Dreamliner was opened, manufacturer Messier-Bugatti-Dowty came to the AMRC to see if it was feasible to make landing gear parts from a new grade of titanium alloy.

Boeing were looking to reduce the weight of the landing gear components whilst crucially retaining the strength and durability. Titanium was the preferred material and AMRC engineers worked with Messier-Bugatti-Dowty to help reduce the machining of the titanium 5553 components by a factor of 18, and reduce their tooling costs by 30%.

A multi year programme, backed by the Technology Strategy Board (now Innovate UK) began in 2012 to qualify Carpernter's CUSTOM 465 stainless steel. The new aerospace steel was mentioned at the Global Manufacturing Festival last year. Airbus joined the AMRC as a Tier One member having previously worked together on the Integrated Wing Project, a previous R&D project lead by Airbus.

A £42m investment in research led by Airbus into designing, manufacturing and assembling the commercial aircraft "Wing of the Future," is another project that researchers from the AMRC are heavily involved with.
Airbus is an aircraft manufacturing subsidiary of EADS, a European aerospace company. Based in France, the company produces approximately half of the world's jet airliners. This week it celebrated Finnair becoming the first European airline to operate the Airbus A350 XWB, where the very latest in aerodynamics, design and advanced technologies have been brought together to improve fuel efficiency, meaning that operating costs are 25% lower than its current long-range competitor.

And there's another link to Rotherham and the Advanced Manufacturing Park. The new planes are powered by the Trent XWB, the fastest-selling member of the Rolls-Royce Trent engine family, with more than 1,600 ordered prior to its entry into service.

The latest engines from Rolls-Royce contain turbine blades manufacturing in Rotherham at Rolls-Royce's Advanced Blade Casting Facility (ABCF). "Grown" in a special process which ensures that they are created from a single metal crystal to maximise their strength, these SX blades rotate at 12,500 rpm, with their tips reaching 1,200mph – twice the speed of sound. At take off each of the engine's 68 high pressure turbine blades generates around 900 horsepower per blade – the equivalent to that of a Formula One racing car.

Eric Schulz, president - Civil Large Engines at Rolls-Royce (pictured, right), said: "We are very proud to be with Finnair and Airbus today to mark another chapter in the A350 XWB story. The Trent XWB exemplifies how we take the best in technology to deliver new standards of excellence."

AMRC website
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Tuesday, July 22, 2014

News: Rolls-Royce profits from record-breaking Farnborough for Airbus

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The £70 billion civil aviation order book of world-renowned engineers, Rolls-Royce, has been boosted further at the Farnborough International Airshow where aircraft manufacturer, Airbus won business worth more than £44 billion for 496 aircraft.

At the start of the week long exhibition, Airbus announced that it had selected the new Trent 7000 from Rolls-Royce as the exclusive engine for the new Airbus A330neo.

The aircraft manufacturing subsidiary of EADS, a European aerospace company, went on to announce deals with major customers for a total of 121 A330neos worth £19 billion.

The Trent 7000 builds on the market-leading Trent 700 to deliver significant performance benefits, improving specific fuel consumption by 10 per cent and halving perceived noise. Agreements included selection by AirAsia X (50 aircraft), Transaero Airlines (12) and lessors Air Lease Corporation (25), CIT (15) and Avolon (15).

Elsewhere in the civil market, Kuwait Airways selected the Trent 700 to power their fleet of five new A330 aircraft and Air Mauritius ordered six Airbus A350 XWB aircraft, powered by the Trent XWB. Away from the show, a higher thrust version of the Trent XWB, the world's most efficient large civil aero engine, ran for the first time on the test bed.

The Trent XWB, specifically designed for the A350 XWB, is the fastest-selling Trent engine ever, with more than 1,400 already sold.

The engines will contain turbine blades manufacturing in Rotherham at Rolls-Royce's Advanced Blade Casting Facility (ABCF). The Nickel-based superalloys are made from single crystals using the very latest manufacturing techniques. These SX blades generate the power of a Formula 1 racing car and temperature within the high pressure turbine is 1,700 degrees centigrade, hotter than the melting point of the turbine blades themselves, so they have to be coated with a special ceramic and cooled with air passed through the discs and out of a series of precise holes in the blade.

Production is underway in Rotherham and the ground-breaking manufacturing techniques are being validated. The facility, on the Advanced Manufacturing Park (AMP) has the capacity to produce 200,000 turbine blades per year. There are over 65 turbine blades in every iconic Trent engine.

Rolls-Royce also announced a £50m order from lessor MG Aviation for Trent 1000 engines to power two Boeing 787-9 Dreamliners. United Airlines extended its TotalCare agreement to support its fleet of RB211-535 engines powering the Boeing 757.

Rolls-Royce
Airbus website

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Monday, July 21, 2014

News: Further funding keeps AMRC at the heart of aerospace research

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The University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing in Rotherham has secured a significant slice of new funding to continue its research at the cutting edge of the aerospace sector.

Announced by the Deputy PM, Nick Clegg at the Farnborough International Airshow, government and industry will invest £154m to support Aerospace Technology Institute (ATI) research and development projects on the next generation of quieter, faster and more environmentally friendly planes.

The AMRC is based on the Advanced Manufacturing Park (AMP) and is a partnership between industry and academia focused on advanced machining and materials research for aerospace and other high-value manufacturing sectors. It is already heavily involved in three of the four cutting edge research programmes announced.

A £42m investment in research led by Airbus into designing, manufacturing and assembling the commercial aircraft "Wing of the Future," is one of the projects researchers from the AMRC are already heavily involved with. Manufacturer, Airbus joined the AMRC as a Tier One member last year having previously worked together on the Integrated Wing Project, a previous R&D project lead by Airbus.

A further £20m will go to a project led by Rolls-Royce to explore new ways of creating lighter, greener and more fuel-efficient aircraft engines, while £49m will go to a project led by GKN to create lighter aircraft structures – two further areas where the AMRC is involved.

Deputy Prime Minister Nick Clegg said: "The UK's aerospace industry is going from strength to strength and helping our economic recovery. We are the number 1 aerospace industry in Europe and second only to the United States globally.

"I want to ensure the UK remains at the cutting edge of aerospace innovation, which is why I am pleased to announce that we are investing £154m for research to explore new technologies like the 3D printing of plane parts and creating lighter, greener aircraft.

"By working in partnership with business, we are building a stronger, more balanced economy, creating more jobs and sharing the wealth equally."

Prof Keith Ridgway CBE, executive dean at the AMRC, described the announcement as "a welcome confirmation of long-term funding, which will help to keep the UK at the forefront of the global aerospace sector and will also support the work of the AMRC."

Last month it was announced that Castings Technology International (CTI) in Rotherham, part of the AMRC, is set to become the only place in the UK that can produce large scale titanium castings for the next generation of aircraft. A £7m government grant will fund a new facility at CTI that will allow companies within the aerospace industry to develop the capability to melt and manufacture precision castings in the UK instead of this work being carried out abroad.

Factory 2050, the state of the art, £43m development from the AMRC that is set to be built over the Parkway on Sheffield Business Park, will be the UK's first fully reconfigurable assembly and component manufacturing facility for collaborative research, capable of rapidly switching production between different high-value components and one-off parts. Plans also incorporate an extension big enough for research into new, more efficient ways of constructing aircraft wings.

It was also announced that small and medium enterprises (SMEs) can bid for a share of a £25m pot from October 2014. This funding competition is expected to stimulate projects worth £50m in total. Administered by the Technology Strategy Board, this will create jobs in the supply chain so local communities can benefit even further when big companies like Rolls-Royce and Airbus open factories in their region. Rolls-Royce recently began production at its new Advanced Blade Casting Facility (ABCF) in Rotherham.

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Tuesday, July 15, 2014

News: Rolls-Royce to supply Airbus for A330 revamp

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Airbus has selected the new Trent 7000 from Rolls-Royce as the exclusive engine for the new Airbus A330neo.

Both the new engine and revamped plane were launched on the first day of the Farnborough International Airshow, one of the world's largest exhibitions and air displays.

The A330neo will be added to Airbus' Widebody Family with aerodynamic enhancements and new cabin features, and the ultra efficient Trent engine, reducing fuel consumption by 14% per seat, making it the most cost efficient, medium range widebody aircraft on the market.

The majority of modern widebody aircraft, either in service or on order, are powered by Rolls-Royce Trent engines. Combining previous work developing the Trent 700 - the engine of choice for the current A330; the Trent 1000; and the Trent XWB - the world's most efficient large civil engine, the new Trent 7000 will improve specific fuel consumption by ten per cent; have twice the bypass ratio; and will halve perceived noise.

The engines will contain turbine blades manufacturing in Rotherham at Rolls-Royce's Advanced Blade Casting Facility (ABCF). Made from single crystals using the very latest manufacturing techniques, these SX blades generate the power of a Formula 1 racing car. The temperature within the high pressure turbine is 1,700 degrees centigrade, hotter than the melting point of the turbine blades themselves so they have to be coated with a special ceramic and cooled with air passed through the discs and out of a series of precise holes in the blade.

Production is underway in Rotherham and the ground-breaking manufacturing techniques are being validated. The facility, on the Advanced Manufacturing Park (AMP) has the capacity to produce 200,000 turbine blades per year.

Rolls-Royce spends around £1bn a year on research and development as it strives to develop new manufacturing techniques and make its engines more efficient and cost effective. The University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing in Rotherham is to work with partners on the development of next-generation Rolls-Royce engines. The AMRC is also working with Airbus on on a new ultra high strength aerospace steel.

Fabrice Bregier, president and chief executive officer at Airbus, said: "The A330neo is the logical evolution of our reliable and versatile A330 Family. It provides an optimal solution for airlines around the world looking to minimise their fuel and operating costs while offering best-in-class comfort to their passengers. We see strong market potential for the A330neo and we are confident this new aircraft will be a success in the medium-haul segment.

"The Rolls-Royce Trent 7000 combines world-leading experience and cutting-edge technology to play a vital role in ensuring the success of this aircraft for decades to come."

Eric Schulz, president, Civil Large Engines at Rolls-Royce, added: "The Trent 7000 is the natural selection for the A330neo, bringing together our engine experience, design architecture and leading-edge technology. With this pedigree, supported by TotalCare services that maximise aircraft availability, the economic advantages of the Trent 7000 are helping to write this new chapter in the A330 success story."

The decision to revamp the A330 was immediately vindicated with the announcement that Air Lease Corporation is to buy 25 A330neo planes as part of a $14 billion order with Airbus.

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Thursday, June 26, 2014

News: Airbus working with AMRC on new aerospace steel

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Leading aircraft manufacturer, Airbus, is carrying out research with the University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing in Rotherham, on a new ultra high strength steel that could end up being manufactured here in the Sheffield city region.

Colin Sirett, head of research & technology for Airbus in the UK, gave an update at the Global Manufacturing Festival conference, being hosted by the AMRC's Training Centre, on the focus that Airbus and the rest of the industry has on lowering costs and reducing the impact on the environment as the demand for air travel soars.

Airbus is an aircraft manufacturing subsidiary of EADS, a European aerospace company. Based in France, the company produces approximately half of the world's jet airliners. It produces the first commercially viable fly-by-wire (electronic) airliner, the Airbus A320, the world's largest passenger airliner, the A380, and the A350 XWB which it claims will be more fuel-efficient and have operating costs up to 8% lower than the competing Boeing 787 Dreamliner.
Working together with governments, industries, research institutes and universities around the world, Airbus is researching the technologies and innovations needed to deliver a significant improvement in efficiency and performance. Airbus joined the AMRC as a Tier One member last year having previously worked together on the Integrated Wing Project, a previous R&D project lead by Airbus.

Airbus is focusing on reducing overall costs for each aircraft, reducing maintenance costs and bringing down lead times. Indeed, Airbus has set itself targets to reduce overall costs by 40% and to reduce the time to market by 50%, and Sirett explained that it will be down to harnessing advanced manufacturing techniques in order to meet these targets by 2020.

He said: "Technology is the easy bit. We have to change the way we manufacture.

"Additive manufacturing and 3D printing is palpable, not just for us, but the whole supply chain. Using techniques like laser metal wire deposition and improved methods of casting has to happen.

"We know the techniques are available here [on the Advanced Manufacturing Park], it needs to get into the supply chain to reduce machining time."

Sirett also explained that research into new materials will also help in the battle to reduce weight and fuel consumption. He said: "Composites and plastics are important but don't forget that the XWB is 42% metal and that's about as far as we'll go.

"Airbus is working with the AMRC on next generation steel. A steel that is ultra high strength and corrosion resistant that can be used for key components on the aircraft.

"There is the potential for it to be made in Sheffield, and that has a good ring to it."

Airbus website
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Tuesday, May 20, 2014

News: Rolls-Royce dispatches first Trent XWB for entry into service

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Rolls-Royce, one of the most famous names in engineering throughout the world, has dispatched the first production Trent XWB that will power the Airbus A350 XWB's entry into commercial service with Qatar Airways later this year.

The Trent XWB, the world's most efficient aero engine and specifically designed for the A350 XWB, is the fastest-selling civil large engine ever, with more than 1,600 already sold to 40 customers.

Employees and guests gathered at Rolls-Royce in Derby to wave the engine off on its journey to Toulouse, where it will later be fitted to the first A350 XWB aircraft to enter service.

Chris Young, Trent XWB programme director at Rolls-Royce, said: "This is an exciting moment for all of us, and marks the first of many Trent XWB deliveries for service. When we reach peak production in 2017 we will be delivering a Trent XWB every working day."

Work on the engine started in 2005 when Rolls-Royce sat down with Airbus to look at how they could improve the performance of the new A350. Today the programme involves 16 manufacturing plants, eleven engineering and testing facilities, 12 engineering partners as well as 75 suppliers worldwide.

One of the manufacturing plants is on the Advanced Manufacturing Park (AMP) in Rotherham, where single crystal (SX) turbine blades are being produced using the very latest manufacturing techniques.

The turbine extracts energy from the hot gas stream received from the combustor in high-thrust aero engines. Turbine blades convert the energy stored within the gas into kinetic energy.

The advanced turbine blade castings operate in the hottest part of the engine, at 200 degrees centigrade above the melting point of the material from which it's made. Temperatures are approaching half the surface of the sun and even the "cooling air" forced through the holes in the blade is 800C.

The turbine also operates in pressures that are equivalent to half a kilometre down in the ocean. With 68 blades on a rotor spinning at 12,000rpm, centrifugal loads of up to 10 tons are generated on each blade, equivalent to a London bus hanging from it. The high pressure blade tips reach 1,200mph, and at take off one blade creates the same horsepower as a Formula 1 racing engine.

When put together with other ground breaking aspects of the engine it makes the Trent XWB some 20% more fuel efficient than the engines powering the airliners it will replace, saving airlines operating the A350 around £2m per aircraft, per year.

Both Rolls-Royce and Airbus are Tier One members of the University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing, also based on the AMP in Rotherham, as they continue to develop new ways of making aircraft lighter and more fuel efficient.

Rolls-Royce website
Airbus website

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Thursday, December 19, 2013

News: Airbus joins AMRC as Tier One member

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The University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing has strengthened its partnership between industry and academia by signing up leading aircraft manufacturer, Airbus, as a Tier One member.

Based on the Advanced Manufacturing Park (AMP) in Rotherham and a partner in the HVM Catapult (the government's strategic initiative that aims to revitalise the manufacturing industry), the AMRC focuses on advanced machining and materials research for aerospace and other high-value manufacturing sectors.

Airbus is an aircraft manufacturing subsidiary of EADS, a European aerospace company. Based in France, the company produces approximately half of the world's jet airliners. It produces the first commercially viable fly-by-wire (electronic) airliner, the Airbus A320, the world's largest passenger airliner, the A380, and the A350 XWB which it claims will be more fuel-efficient and have operating costs up to 8% lower than the competing Boeing 787 Dreamliner.

With sites in Filton and Broughton, around 100,000 jobs are generated in the UK by Airbus wing work, both directly as well as indirectly through an extended supply chain of over 400 companies.

Working together with governments, industries, research institutes and universities around the world, Airbus is researching the technologies and innovations needed to deliver a significant improvement in efficiency and performance and will benefit and contribute to the growth of the industry on a global scale.

By taking Tier One membership at the AMRC, Airbus gains access to all the resources and generic research at the state of the art facility, and also takes a seat on the board to help determine the direction of future research. Tier One membership costs £200,000 per year and other Tier One members at The AMRC include Boieng, BAE Systems and Rolls-Royce.

The AMRC played a major role in the Integrated Wing Project, a previous R&D project lead by Airbus. In an effort to improve efficiency, the project team focused on identifying new materials and manufacturing processes to produce actuators and braces for aircraft landing gear that would be lighter than those currently made with high tensile strength steel.

Teams at the AMRC's Advanced Structural Testing Centre and Composite centres investigated the feasibility of using an advanced carbon composite actuator rod overclad with steel, laser deposited stainless steel, titanium silicon carbide metal matrix composites, in addition to testing associated with high tensile steel.

Airbus is also one of a number of leading companies supporting AMRC Factory 2050, the £43m state-of-the-art research factory that will be the UK's first fully reconfigurable assembly and component manufacturing facility for collaborative research.

Professor Ridgway, founder of the world-leading University of Sheffield Advanced Manufacturing Research Centre (AMRC) with Boeing, was recently awarded an Honorary Fellowship of the Royal Aeronautical Society, the world's highest distinction for aerospace achievement, awarded only for the most outstanding contributions to the aerospace profession.

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