General Electric GE90

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The General Electric GE90 is a family of high-bypass turbofan aircraft engines built by GE Aerospace for the Boeing 777, with thrust ratings from Template:Convert. It entered service with British Airways in November 1995. It is one of three engines for the 777-200 and -200ER, and the exclusive engine of the -200LR, -300ER, and 777F. It was the largest jet engine,<ref name=120119PR>Template:Cite press release</ref> until being surpassed in January 2020 by its successor, the Template:Cvt GE9X, which has a larger fan diameter by Template:Convert. However, the GE90-115B, the most recent variant of the GE90, is rated for a higher thrust (115,000 lbs) than the GE9X.

Background

In the early 1980s, GE began to develop an unducted fan (UDF) engine, which was thought to be a more fuel-efficient option to propel short-haul airliners, a compelling proposition after the 1979 oil crisis. NASA gave GE a grant in February 1984 to continue its research, eventually building the experimental GE36. One of the major innovations for the engine were its carbon fiber composite fan blades, which were both lighter and stronger than traditional materials.<ref name="Sweetman 2005">Template:Cite news</ref> However, the UDF was less reliable than the turbofans of the era, lower fuel costs made the cost of developing the engine less attractive, and the company was worried the GE36 would cannibalize sales of the highly successful CFM56 engine it had co-developed with Snecma of France.<ref name="Sweetman 2005" />

Development

The GE90 engine was launched in 1990 to provide a large turbofan engine for the Boeing 777, a wide-body, long-range, twin-engine jet airliner.<ref>Template:Cite press release</ref> GE Aviation teamed with Snecma (France, 24%), IHI (Japan) and Avio (Italy) for the program.<ref name="SnecmaGE90">Template:Cite web</ref> The GE90 would face stiff competition as Pratt & Whitney and Rolls-Royce would also offer engines for the 777, the PW4000 and Trent 800, respectively.

The major innovation of the GE90 was that it used 22 carbon fiber composite fan blades, technology first developed for the GE36. These blades provided double the strength at one-third the weight of traditional titanium fan blades. The 22 fan blades were a significant reduction from the 38 blades used in GE's prior large turbofan, the CF6, despite the Template:Convert greater diameter of the GE90. Having fewer fan blades reduces the engine weight and improves aerodynamic efficiency.

With the stiff competition to equip the first generation 777 models (777-200 and 777-200ER), GE tried to branch out and use the GE90 for other aircraft. Then-CEO Brian H. Rowe went so far as to offer to pay for the development of the GE90 for the Airbus A330, but Airbus rebuffed the plan, instead choosing to focus on the four-engine A340 for the long-haul market.<ref name="Leeham14dec20172">Template:Cite news</ref>

In the late 1990s, Boeing began developing the second-generation 777 long-range variants (777-200LR, 777-300ER, and 777F). For these aircraft a more powerful engine in the thrust class of Template:Cvt was required, leading to talks between Boeing and engine manufacturers. General Electric offered to develop the GE90-115B engine,<ref name=777XGE90>Template:Cite web</ref> while Rolls-Royce proposed developing the Trent 8104 engine.<ref>Template:Cite web</ref> In 1999, Boeing announced an agreement with General Electric, beating out rival proposals.<ref name="777XGE90" /> Under the deal with General Electric, Boeing agreed to only offer GE90 engines on new 777 versions.<ref name="777XGE90" /> The GE90-115B had its first run at the GE facility in Peebles, Ohio in November 2001.<ref>Template:Cite web</ref>

The GE90-115B diameter is Template:Cvt, comparable to the fuselages of the Boeing 737 and Airbus A320 at Template:Cvt and Template:Cvt respectively, while the 777 fuselage is Template:Cvt

Design

The GE90's 10-stage high-pressure compressor developed a then-industry record pressure ratio of 23:1 and is driven by a 2-stage, air-cooled, HP turbine. A 3-stage low-pressure compressor, situated directly behind the fan, supercharges the core. The fan/LPC is driven by a 6-stage low-pressure turbine.

The higher-thrust variants, GE90-110B1 and -115B, have a different architecture from that of the earlier GE90 versions. General Electric incorporated an advanced larger diameter fan made from composite materials which enhanced thrust at low flight speeds. However, GE also needed to increase core power to improve net thrust at high flight speeds. Consequently, GE elected to increase core capacity, which they achieved by removing one stage from the rear of the HP compressor and adding an additional stage to the LP compressor, which more than compensated for the reduction in HP compressor pressure ratio, resulting in a net increase in core mass flow.<ref>Template:Cite web</ref>

The higher-thrust GE90 variants are the first production engines to feature swept rotor blades. The nacelle has a maximum diameter of Template:Cvt.<ref name=seattletimes4jan2019>Template:Cite news</ref> Each of the 22 fan blades on the GE90-115B have a length of Template:Convert and a mass of less than Template:Convert.<ref name="MoMA">Template:Cite book</ref>

An original GE90-94B operating on a 777-200ER

Operational history

As one of the three available engines for the all-new Boeing 777 large twinjet airliner, the GE90 was an all-new $2 billion design in contrast to the offerings from Pratt & Whitney and Rolls-Royce which were modifications of existing engines.<ref name=FG990714/>

The first General Electric-powered Boeing 777 was delivered to British Airways on November 12, 1995.<ref>Template:Cite book</ref> The aircraft, with two GE90-77Bs, entered service five days later. Initial service was affected by gearbox bearing wear concerns, which caused the airline to temporarily withdraw its 777 fleet from transatlantic service in 1997. British Airways' aircraft returned to full service later that year.<ref name=norris143-144>Template:Cite book</ref>

Problems with GE90 development and testing caused delays in Federal Aviation Administration certification. British Airways soon replaced the GE90 with the Rolls-Royce Trent 800 on their 777s. In addition the GE90's increased thrust was not yet required by airlines and it was also the heaviest engine of the three available choices, making it the least popular option on these first generation 777s (777-200 and 777-200ER, also known as the 777 Classic) while the Rolls-Royce engine was the most popular.<ref name=FG990714/><ref name=BB990809/>

A GE90-115B engine

For Boeing's second-generation 777 long-range versions (777-200LR, 777-300ER, and 777F), greater thrust was needed to meet the aircraft requirements. General Electric and Pratt & Whitney insisted on a winner-take-all contract due to the $500 million investment in engine modifications needed to meet the requirements, with GE receiving sole engine supplier status.<ref name=FG990714>Template:Cite news</ref><ref name=BB990809>Template:Cite news</ref> The improved version entered service with Air France in May 2004.<ref>Template:Cite press release</ref>

The higher thrust GE90-110B1 and -115B engines, in combination with the second-generation 777 variants -200LR and -300ER, were primary reasons for 777 sales being greater than those of its rival, the A340.<ref name=777pressure>Template:Cite web</ref> Using two engines produces a typical operating cost advantage of around 8–9% for the -300ER over the A340-600.<ref name="exclusive-a340e">Template:Cite web</ref> The 777-300ER was also seen as a 747-400 replacement amid rising fuel prices given its 20% fuel burn advantage.<ref>Template:Cite news</ref>

Until passed by its derivative, the GE9X, the GE90 series held the title of the largest engines in aviation history. The fan diameter of the original series being Template:Convert, and the largest variant GE90-115B has a fan diameter of Template:Convert. As a result, the GE90 engine can only be air-freighted using an outsize cargo aircraft such as the Antonov An-124, which restricts shipping options if, due to an emergency diversion, a 777 were stranded needing an engine change. If the fan and fan case are removed the engine may be shipped using a 747 Freighter.<ref>Template:Cite news</ref>

The -94B for the -200ER was retrofitted with some of the first FAA-approved 3D-printed components.<ref name="ge2015-3d">Template:Cite news</ref>

In 2011, its list price was US${{#expr:11000/400}} million, and it had an in-flight shutdown rate (IFSD) of one per million engine flight-hours.<ref name=120119PR/> Until November 2015, it accumulated more than 8 million cycles and 50 million flight hours in 20 years.<ref>Template:Cite press release</ref> In July 2020, the fleet of 2,800 engines surpassed 100 million hours, powering over 1,200 aircraft for 70 operators with a dispatch reliability rate of 99.97%.<ref name=GE24july2020>Template:Cite press release</ref> A complete overhaul costs more than $12 million.<ref>Template:Cite news</ref>

Records

GE90 without cowling
The higher-thrust GE90-115B mounted on N747GE, GE's Boeing 747 test aircraft.

The GE90-115B provided enough thrust to fly N747GE, GE's Boeing 747-100 flying testbed with the other three engines at idle, an attribute demonstrated during a flight test.<ref>Template:Cite videoTemplate:Cbignore</ref><ref>Template:Cite news</ref>

According to the Guinness Book of Records, at Template:Convert, the engine held the record for the highest thrust achieved by an aircraft engine (the maximum thrust for the engine in service is its rated thrust Template:Convert). This thrust record was reached inadvertently as part of a one-hour, triple-red-line engine stress test using a GE90-115B development engine at GE's outdoor test complex near Peebles, Ohio. It eclipsed the engine's previous Guinness world record of Template:Convert.<ref name=030205PR>Template:Cite press release</ref> On November 10, 2017, its successor, the GE9X, reached a higher record thrust of Template:Cvt in Peebles.<ref>Template:Cite press releaseTemplate:Dead link</ref>

The initial GE90 fan shaft design loads were greatly increased for operational torque and the fan blade-off condition. To accommodate the increase in fan-shaft torsional and bending stresses, a steel alloy, GE1014, not previously used in aircraft engines was required. A significantly longer fan shaft spline-coupling was required and maintaining the required high machining accuracy was challenging.<ref>Development of GE90-115B Turbofan Engine,Horibe et al., IHI Engineering Review,Vol.37 No.February 1, 2004,p.6</ref><ref>Template:Cite press release</ref>

In October 2003, the Boeing 777-300ER with GE90-115B engines was the first ever plane/engine configuration to be certified ETOPS 330. This allows flying routes where flying time to the nearest airport, with one engine shut down, could be as much as five and a half hours (330 minutes).<ref>Template:Cite press release</ref> That aircraft, with GE90-115B engines, flew from Seattle to Taiwan as part of this ETOPS certification program, with one engine actually shut down for 330 minutes, during the approximately 13 hour flight.

On November 10, 2005, the GE90 entered the Guinness World Records for a second time. The GE90-110B1 powered a 777-200LR during the world's longest flight by a commercial airliner, though there were no fare-paying passengers on the flight, only journalists and invited guests. The 777-200LR flew Template:Convert in 22 hours, 22 minutes, flying from Hong Kong to London "the long way": over the Pacific, over the continental U.S., then over the Atlantic to London.<ref>Template:Cite news</ref>

Incidents

On August 11, 2004, a GE90-85B powering a Boeing 777-200ER on British Airways flight 2024 suffered an engine failure on takeoff from George Bush Intercontinental Airport in Houston, Texas. The pilots noticed a noise and vibration on takeoff but continued the rotation. At 1500 ft AGL they noticed smoke and haze in the cockpit and cabin crew advised the cabin was filling with smoke. They returned to the airport for an emergency landing. The findings were that a stage 2 turbine blade had separated at its shank, damaging the trailing blades and causing the vibration. The debris was contained in the engine casing.<ref>url= https://www.ntsb.gov/_layouts/ntsb.aviation/brief2.aspx?ev_id=20041015X01640&ntsbno=DCA04IA066&akey=1 Template:Webarchive</ref>

On May 28, 2012, an Air Canada 777-300ER taking off from Toronto en route to Tokyo suffered failure of a GE90-115B at Template:Convert and returned safely. Engine debris was found on the ground.<ref>Template:Cite web</ref><ref>Template:Cite news</ref>

On September 8, 2015, a GE90-85B powering a Boeing 777-236ER on British Airways Flight 2276 suffered an uncontained failure during take-off roll at Las Vegas McCarran Airport, leading to a fire.<ref>Template:Cite web</ref><ref>Template:Cite web</ref>

On June 27, 2016, a GE90-115B powering a Boeing 777-300ER, on Singapore Airlines Flight 368, received an engine oil warning during flight and returned to Singapore Changi Airport. On landing the malfunctioning right engine caught fire, leading to fire damage to the engine and the wing.<ref>Template:Cite web</ref>

Transfer gearbox failures

The FAA issued an Airworthiness Directive (AD) on May 16, 2013, and sent it to owners and operators of General Electric GE90-110B1 and GE90-115B turbofan engines. This emergency AD was prompted by reports of two failures of transfer gearbox assemblies (TGBs) which resulted in in-flight shutdowns (IFSDs). Investigation revealed that the failures were caused by TGB radial gear cracking and separation.<ref name="TGB NTSB Incident Findings">Template:Cite web</ref> Further inspections found two additional radial gears with cracks. This condition, if not corrected, could result in additional IFSDs of one or more engines, loss of thrust control, and damage to the airplane. The Airworthiness Directive requires compliance by taking remedial measures within five days of receipt of the AD. All affected modules have been replaced.<ref>Template:Cite web</ref>

Specifications

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GE90 Type Certificate<ref name=TCDS>Template:Cite web</ref> Datasheet<ref name=datasheet>Template:Cite web</ref>
Variant -76B/-77B/-85B/-90B/-94B -110B1/-113B/-115B
Type Dual rotor, axial flow, high bypass turbofan
Compressor 1 fan, 3-stage LP, 10-stage HP 1 fan, 4-stage LP, 9-stage HP<ref name=GE90>Template:Cite web</ref>
Turbine 2-stage HP, 6-stage LP
LengthTemplate:Efn Template:Cvt Template:Cvt
Max. width Template:Cvt Template:Cvt
Max. height Template:Cvt Template:Cvt
Fan diameter<ref>Template:Cite press release</ref> Template:Cvt Template:Cvt
WeightTemplate:Efn Template:Cvt Template:Cvt
Takeoff thrust Template:Cvt Template:CvtTemplate:Efn
LP rotor speed 2,261.5 rpm 2,355 rpm
HP rotor speed 9,332 rpm
Air mass flow

Static: 1350 kg/s<ref name=datasheet></ref>
Cruise: 576 kg/s<ref name=datasheet></ref>

Specific thrust

Static: 278.1 m/s²<ref name=datasheet></ref>
Cruise: 120.1 m/s²<ref name=datasheet></ref>

Bypass ratio<ref name="SnecmaGE90"/> 8.4–9 9
Pressure ratio<ref name=GE90/> 40:1 42:1
Thrust-to-weight ratio {{#expr:97300/17400round2}} {{#expr:115540/19316round2}}
Takeoff TSFC Template:Convert<ref>Template:Cite magazine</ref>
Cruise TSFC Template:Cvt (-76B)<ref name="ijaaa"/> (-85B)<ref>Template:Cite web</ref>
or Template:Cvt (-85B)
<ref name="ijaaa">Template:Cite journal</ref><ref name="Sahai">Template:Cite thesis</ref>

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Derivatives

GEnx

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The GEnx engine, that has been developed for the Boeing 787 Dreamliner and 747-8, is derived from a smaller core variant of the GE90, also featuring a fan with swept rotor blades.

GP7000

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GE Aviation set up a cooperative venture with Pratt & Whitney, named Engine Alliance, under which the companies have developed an engine for the Airbus A380, named GP7000, based on an 0.72 flow scale of the GE90-110B/115B core.

GE9X

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In February 2012, GE announced studies on a 10% more efficient derivative, dubbed the GE9X, to power the new Boeing 777-8X/9X aircraft.

LM9000

The LM9000 is an aeroderivative gas turbine available in two options; the LM9000 without water augmentation outputting Template:Cvt at a 42.4% efficiency before cogeneration, and the LM9000 with water augmentation outputting Template:Cvt at a 42.7% efficiency before cogeneration.<ref>Template:Cite web</ref> The engine's 33:1 pressure ratio comes from a 4-stage low pressure compressor followed by a 9 stage high pressure compressor, driven by a 2 stage high pressure turbine and a 1-stage low pressure turbine, powering a 4-stage free turbine.<ref>Template:Cite web</ref>

See also

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References

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Notes

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