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Textron Safeaero 220E Electric Aircraft Deicer Advances Aviation Ground Support

Textron’s Safeaero 220E electric deicer offers emission-free, single-operator aircraft deicing with advanced battery tech and fluid management.

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Textron GSE’s Safeaero 220E Electric Deicer: A Comprehensive Analysis of Innovation in Aviation Ground Support Equipment

The aviation industry is witnessing a significant transformation in ground support operations with the introduction of the Safeaero 220E, an all-electric aircraft deicer developed by Textron Ground Support Equipment Inc. This groundbreaking equipment represents a convergence of Sustainability imperatives, technological advancement, and operational efficiency requirements that are reshaping how airports and airlines manage winter weather operations. The Safeaero 220E, unveiled at the International GSE Expo in Las Vegas in September 2024 and subsequently showcased at the GSE Expo Europe in Lisbon, Portugal, combines lithium battery power with single-operator functionality and advanced fluid management technology to deliver what industry executives describe as emission-free operations without compromising safety or performance.

As Airports worldwide face mounting pressure to reduce carbon emissions while maintaining rigorous safety standards during winter operations, the Safeaero 220E emerges as a technological solution that addresses both environmental concerns and the persistent challenge of aircraft ice contamination. The equipment’s development through a strategic partnership with British electrification specialist Equipmake demonstrates how cross-industry collaboration is driving innovation in aviation ground support, while its market introduction coincides with broader industry trends showing substantial growth potential for both electric ground support equipment and deicing solutions specifically.

The Aircraft Deicing Industry and Its Critical Role in Aviation Safety

Aircraft deicing represents one of the most critical safety procedures in aviation operations, particularly in regions experiencing winter weather conditions. The fundamental principle underlying all deicing operations is known as the Clean Aircraft Concept, which mandates that aircraft critical surfaces must be completely free of ice, snow, slush, or frost prior to takeoff. This concept is not merely a best practice but a regulatory requirement enforced by aviation authorities worldwide, as ice contamination on aircraft surfaces can dramatically alter aerodynamic properties, potentially leading to catastrophic failures during takeoff and flight.

The responsibility for ensuring compliance with the Clean Aircraft Concept falls primarily on the pilot-in-command, who must evaluate actual and forecast weather conditions, taxi times and conditions, deicing and anti-icing fluid characteristics, and other relevant factors to determine the estimated holdover time, the period during which applied deicing fluids remain effective. However, this responsibility is shared with ground deicing crews who provide aircraft that comply with the Clean Aircraft Concept through proper application of deicing procedures.

The operational complexity of aircraft deicing extends far beyond simply spraying fluids on aircraft surfaces. Ground personnel must conduct thorough pre-flight checks to identify the presence of ice, snow, slush, or frost on aircraft critical surfaces, fuselage, and landing gear in accordance with approved operator plans. Following the application of deicing and anti-icing fluids, qualified personnel must perform immediate checks to ensure compliance with the Clean Aircraft Concept, with these checks forming part of the technical airworthiness of the aircraft. The pre-takeoff check, conducted as close to the time of takeoff as possible, represents the final verification that critical surfaces remain free of contamination.

The economic consequences of inadequate deicing capabilities or weather-related delays underscore the financial pressures driving investment in advanced deicing equipment. According to Airlines for America, the average cost of aircraft block time for United States passenger airlines reached $100.76 per minute in 2024, with labor costs representing the largest line item at $35.23 per minute and fuel costs accounting for $33.06 per minute. These figures illustrate the substantial financial burden that winter weather delays impose on airlines, as delayed aircraft generate billions of dollars in additional expenses annually.

The regulatory framework governing deicing operations establishes stringent requirements that shape equipment design and operational procedures. Regulatory authorities ensure that every operator maintains an approved deicing and anti-icing program or procedures, with these programs requiring comprehensive protocols for fluid application, quality checks, and verification processes. This regulatory environment has driven the development of increasingly sophisticated deicing equipment featuring remote diagnostics, automated functions, and data recording capabilities that facilitate compliance documentation and quality assurance.

“The Clean Aircraft Concept is not just best practice, it’s a regulatory imperative that underpins the safety of every winter flight.”

Market Dynamics and Economic Significance

The global aircraft deicing market demonstrates robust growth trajectories that reflect increasing air traffic volumes, airport infrastructure expansion in cold weather regions, and evolving technological capabilities. According to IMARC Group, the global aircraft deicing market reached a valuation of USD 1.36 billion in 2024, with projections indicating growth to USD 2.01 billion by 2033, representing a compound annual growth rate of 4.23 percent during the forecast period from 2025 to 2033. Alternative market research from GM Insights presents slightly different figures but confirms the overall growth trend, valuing the global aircraft deicing market at USD 1.67 billion in 2024 with an estimated compound annual growth rate of 4.6 percent from 2025 to 2034.

Within the broader aircraft deicing market, specific equipment categories demonstrate varying growth patterns and market share distributions. Deicing trucks represent the largest equipment segment, accounting for their crucial role in maintaining safety and efficiency of aircraft operations in winter weather conditions. These specialized vehicles feature advanced spraying systems and heated fluid tanks enabling rapid application of deicing and anti-icing fluids on aircraft surfaces. Their mobility and adaptability allow them to service various aircraft types across different airport locations, contributing to shorter turnaround times and improved schedule reliability.

The deicing vehicles market, which encompasses the specialized equipment used for deicing operations, shows even stronger growth projections than the broader aircraft deicing market. GM Insights reports that the global deicing vehicles market was valued at USD 1.1 billion in 2024 and is estimated to register a compound annual growth rate of 5.7 percent between 2025 and 2034. Within this market, the sprayer type technology segment dominates, generating revenue of approximately USD 690 million in 2024. High-capacity deicing vehicles, which are essential for servicing large Commercial-Aircraft efficiently, held a market share of 70 percent in 2024.

The broader ground support equipment market provides essential context for understanding the deicing equipment sector’s position within the aviation ecosystem. Fortune Business Insights projects that the global ground support equipment market will grow from USD 9.67 billion in 2025 to USD 17.44 billion by 2032, exhibiting a compound annual growth rate of 8.79 percent. The electrical ground support equipment segment within this broader market demonstrates particularly strong growth momentum, with TechSci Research valuing the global electrical ground support equipment market at USD 7.34 billion in 2024 and projecting growth to USD 10.02 billion by 2030.

“The global aircraft deicing market is projected to grow to over $2 billion by 2033, with electric ground support equipment gaining rapid share.”
, IMARC Group, GM Insights, TechSci Research

The Safeaero 220E: Technical Innovation and Capabilities

The Safeaero 220E represents a technological advancement in aircraft deicing equipment through its integration of electric propulsion with established single-operator functionality. The equipment’s design centers on a lithium battery power system that delivers operational capabilities comparable to diesel-powered units while eliminating direct emissions at the point of use. According to Morgan Gresens, Vice President and General Manager of Textron GSE, the vehicle can withstand a full day of deicing operations before requiring recharging.

This endurance capability is achieved through a dual battery pack configuration, with technical specifications indicating a battery capacity of 218 kilowatt-hours utilizing thermally managed lithium nickel manganese cobalt chemistry operating at a maximum voltage of 800 volts direct current. The electric drivetrain architecture employs a high-torque, low-speed alternating current electric motor with liquid cooling, delivering a maximum output of 400 kilowatts at 3,500 revolutions per minute and maximum torque of 3,500 newton-meters.

The charging infrastructure for the Safeaero 220E accommodates both standard and fast-charging protocols, with a 22-kilowatt alternating current on-board charger for overnight charging and a 120-kilowatt direct current fast-charge capability for rapid replenishment during operational periods. The boom system extends the operational reach significantly, with a maximum nozzle height above ground of 65.6 feet and a maximum nozzle swing reach left and right of 45.9 feet. The fluid management system offers multiple tank configuration options, with capacity varying based on whether auxiliary diesel heating is incorporated.

The single-operator design philosophy represents one of the Safeaero 220 platform’s most distinctive features, which the electric 220E variant maintains and enhances. Morgan Gresens emphasized that the equipment qualifies as a true single-operator deicer, meaning the operator can drive the vehicle and perform deicing operations from the cabin without requiring ground personnel for positioning or boom operation. This capability addresses persistent labor challenges in ground handling operations.

“The Safeaero 220E is a true single-operator deicer, combining electric endurance with advanced visibility and control for a wide range of aircraft.”
, Morgan Gresens, Textron GSE

Strategic Partnerships and Development Process

The development of the Safeaero 220E exemplifies how strategic Partnerships between equipment manufacturers and specialized technology providers are driving innovation in aviation ground support equipment. Textron GSE partnered with Equipmake, a British company specializing in the development and production of electrified products across automotive, aerospace, bus, coach, and marine industries, to bring the electric deicer to market.

Equipmake’s role centered on delivering an electric drivetrain solution specifically adapted to the demanding requirements of aircraft deicing operations. The company provided a bespoke version of its Zero Emission Drivetrain technology, consisting of an electric motor and inverter developed in-house and allied to batteries, with the system featuring an integrated thermal management system ensuring reliable deicing at low temperatures.

The certification and market introduction strategy for the Safeaero 220E reflects Textron GSE’s focus on international markets where regulatory and market conditions favor electric ground support equipment adoption. The equipment is CE certified for use in Europe, positioning it for early adoption in European markets where sustainability requirements are most pressing. The equipment was featured at the International GSE Expo in Las Vegas in September 2024, and subsequently showcased at the GSE Expo Europe in Lisbon, Portugal.

“Textron GSE’s selection of Equipmake for the electrification of the Safeaero 220 deicer is a considerable endorsement of our products and technology.”
, Ian Foley, CEO, Equipmake

Environmental and Operational Advantages of Electrification

The environmental benefits of electric ground support equipment represent a primary driver of industry adoption, with the Safeaero 220E exemplifying the emissions reductions achievable through electrification. Electric equipment produces zero direct carbon dioxide and nitrogen oxide emissions at the point of use, eliminating the air quality impacts associated with diesel-powered equipment in congested ramp environments. The noise reduction characteristics of electric motors provide additional environmental advantages, with electric equipment operating at significantly lower noise levels than diesel engines.

The operational advantages of electric ground support equipment extend beyond environmental benefits to encompass maintenance efficiency, reliability, and user experience factors. Electric motors contain fewer moving parts compared to internal combustion engines, resulting in reduced wear and tear and lower maintenance requirements. The simplified operation of electric equipment, with user-friendly interfaces and operating procedures, reduces training requirements and operator fatigue during extended deicing operations.

The economic case for electric ground support equipment continues to strengthen as battery technology advances and operational experience accumulates. Reduced operating costs derive from multiple sources, including lower energy expenses compared to diesel fuel, reduced maintenance requirements, and extended equipment lifespan due to the durability of electric drivetrain components. Many jurisdictions offer government incentives and regulatory support for emission reduction initiatives, including grants, subsidies, and tax benefits that improve the financial attractiveness of electric equipment investment.

“Electric ground support equipment is not only greener, but also offers tangible benefits in maintenance, reliability, and total cost of ownership.”

Competitive Landscape and Industry Context

The aircraft deicing equipment market features several established Manufacturers competing through technological differentiation, service capabilities, and geographic presence. Vestergaard Company represents a prominent competitor, manufacturing and distributing state-of-the-art ground support equipment including aircraft deicers to the aviation industry worldwide. The company’s Elephant range of aircraft deicers presents exceptional flexibility aimed at meeting operational needs in modern airport environments.

Other ground support equipment manufacturers are similarly advancing electrification initiatives across their product portfolios, creating a competitive environment where electric propulsion is becoming an expectation rather than a differentiator. Oshkosh AeroTech offers a comprehensive line of electric airport ground support equipment spanning multiple functional categories including cargo handling, passenger transport, and aircraft positioning.

Technological innovation in deicing methods is introducing alternatives to traditional chemical-based approaches, potentially disrupting established market dynamics. On December 5, 2023, Boston-based company De-Ice disclosed that Air Canada would be the inaugural airline to implement its chemical-free deicing solutions on Airbus A320 aircraft, leading to a notable decrease in winter departure delays and carbon emissions. This technology utilizes high-frequency electric current for deicing, avoiding chemicals entirely and instead using electricity to generate heat that melts ice accumulation.

“The shift toward electric and chemical-free deicing solutions is fundamentally transforming the competitive landscape of ground support equipment.”

Future Outlook and Industry Transformation

The trajectory of the aircraft deicing and ground support equipment markets points toward continued electrification, technological advancement, and sustainability prioritization. Industry surveys indicate strong momentum toward electric ground support equipment adoption, with a March 2024 survey revealing that nearly 80 percent of respondents view electric ground support equipment as moderately or extremely viable for ground handling’s future, and approximately 65 percent planning to adopt electric ground support equipment within the next five years.

The integration of advanced technologies including automation, telematics, and Internet of Things capabilities into ground support equipment is transforming airport operations beyond the electrification dimension. The International Air Transport Association launched a program in May 2024 aimed at accelerating the introduction of enhanced ground support equipment technologies into daily operations, with this initiative expected to streamline processes, boost sustainability, and enhance the overall passenger experience.

Regulatory developments and sustainability commitments are establishing increasingly ambitious targets for aviation emissions reduction that will shape equipment procurement priorities. The Destination 2050 program establishes a plan for reaching net-zero carbon dioxide emissions in the aviation industry by 2050, with the plan targeting net-zero carbon dioxide emissions for all flights operating inside and outside of the European Union, United Kingdom, and European Free Trade Association by 2050.

Conclusion

The introduction of the Textron GSE Safeaero 220E electric aircraft deicer represents a significant milestone in the aviation industry’s transition toward sustainable ground operations. This equipment synthesizes multiple technological advances including lithium battery systems with substantial energy capacity, thermal management enabling reliable cold-weather operation, single-operator design reducing labor requirements, and advanced fluid management minimizing chemical consumption. The successful development and market introduction of the Safeaero 220E demonstrates that electric propulsion can deliver the performance characteristics required for demanding applications like aircraft deicing.

Looking forward, the aircraft deicing equipment sector will likely experience continued technological evolution encompassing further battery improvements, integration with airport operations management systems, potential adoption of alternative power sources, and continued fluid technology innovation reducing environmental impacts. The Safeaero 220E represents an important step in this ongoing transformation, demonstrating that electric propulsion can succeed in demanding applications historically dominated by diesel power. As more operators deploy electric deicing equipment and operational experience accumulates, the industry’s understanding of best practices, optimal configurations, and economic value propositions will continue to evolve.

FAQ

What is the Safeaero 220E?
The Safeaero 220E is an all-electric aircraft deicer developed by Textron GSE, designed for emission-free, single-operator deicing of a wide range of aircraft.

How long can the Safeaero 220E operate on a single charge?
According to Textron GSE, the Safeaero 220E can operate for a full day of deicing operations before requiring a recharge.

What are the main advantages of electric ground support equipment?
Electric ground support equipment offers zero direct emissions, lower noise, reduced maintenance needs, and improved reliability, all while supporting airport sustainability goals.

Who are the main competitors in the electric deicing equipment market?
Key competitors include Vestergaard Company, Oshkosh AeroTech, and several fluid and chemical suppliers such as Clariant and Kilfrost.

What are the market growth projections for aircraft deicing equipment?
The global aircraft deicing market is projected to grow from around USD 1.36 billion in 2024 to over USD 2 billion by 2033.

Sources:
Textron Safeaero 220

Photo Credit: Textron

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MRO & Manufacturing

Electra Invests $850M in Ohio Plant for EL9 Aircraft

Electra commits $850M to build an EL9 hybrid-electric aircraft facility in Springfield, Ohio, targeting 400 aircraft per year.

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Electra has committed $850 million to build its first scaled manufacturing facility in Springfield, Ohio, where the company will produce its EL9 Ultra Short hybrid-electric aircraft. The investment is projected to generate 1,975 jobs in Clark County and marks the transition of the nine-passenger aircraft from development to commercial production.

Announced on July 21, 2026, at the Farnborough International Airshow, the agreement with JobsOhio and state officials places the new plant at AirPark Ohio, adjacent to the Springfield-Beckley Municipal Airport. The EL9, which traces its origins to a Massachusetts Institute of Technology (MIT) class project, utilizes blown-lift technology to operate from unconventional spaces.

Production capacity and regional impact

The Springfield facility will initially support a production rate of 400 aircraft per year. Electra plans to eventually double this capacity to 800 airframes annually as the program matures and market demand dictates.

Ohio Governor Mike DeWine highlighted the state’s historical ties to aviation and its current focus on advanced air mobility (AAM) manufacturing.

“Ohio is where flight began, and the Dayton-Springfield area has become the national epicenter for advanced air mobility,” DeWine stated in a press release. “Electra’s decision to bring nearly 2,000 new jobs to Springfield will be transformative for Clark County.”

Electra CEO Marc Allen emphasized the importance of the Ohio site selection for the program’s next phase, noting the region’s established aerospace and defense ecosystem.

“This agreement is the moment that our vision moves from demonstration into reality,” Allen said. “In Springfield and Clark County, we found the rare combination this next era requires: a ready site, a skilled workforce, a deep aerospace and defense ecosystem, and state and local leaders with the commitment and vision to build it with us.”

Aircraft capabilities and recent milestones

The EL9 Ultra Short is designed to carry nine passengers and requires a minimum runway length of just 150 feet for takeoff and landing. Electra refers to this operational model as “Direct Aviation,” targeting point-to-point transport using infrastructure such as parking lots, barges, and sports fields rather than traditional airport runways.

The aircraft’s development has accelerated in recent weeks. On July 10, 2026, Electra reached an initial certification milestone with the Federal Aviation Administration (FAA). Five days later, the manufacturer finalized an agreement with Safran to develop and produce the TG600 Turbogenerator, which will power the EL9.

An August 25, 2026, feature published by MIT News detailed the aircraft’s academic roots, noting its evolution from a classroom concept to a fully funded commercial program.

AirPro News analysis

We view Electra’s $850 million manufacturing commitment as a critical indicator of maturity in the hybrid-electric aviation sector. While much of the advanced air mobility industry has focused on electric vertical takeoff and landing (eVTOL) designs, Electra’s blown-lift, fixed-wing approach offers a distinct payload and range profile while still minimizing infrastructure requirements. Securing a dedicated production facility with substantial state backing suggests the company is successfully navigating the transition from prototyping to industrialization, a phase that has historically challenged new aerospace entrants.

Sources: MIT News, Electra Newsroom

Photo Credit: Electra

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MRO & Manufacturing

GE Aerospace CNC Apprenticeship Graduates 80 in First Year

GE Aerospace marks one year of its Wilmington, NC CNC machinist apprenticeship, graduating 80+ participants trained to produce jet engine components.

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GE Aerospace announced on August 25, 2026, that more than 80 participants have graduated from its Computer Numerical Control (CNC) machinist apprenticeship program in Wilmington, North Carolina, during the initiative’s first year of operation. The milestone highlights the manufacturer’s ongoing efforts to alleviate aerospace supply chain constraints by accelerating the training of skilled labor for critical jet engine component production.

In a press release issued to mark the program’s anniversary, GE Aerospace detailed that the eight-week training pipeline was developed in partnership with Cape Fear Community College (CFCC). The initiative supports the production of precision core engine parts, including blisks, spools, and high-pressure turbine disks, which are currently in high demand across both commercial and military aviation sectors.

Workforce development and training structure

The apprenticeship model condenses the initial skills acquisition phase into an eight-week window. Participants undergo five weeks of intensive instruction at CFCC facilities before moving to the GE Aerospace plant floor for applied training. The curriculum is designed to transition individuals with no prior aviation manufacturing experience into capable CNC machinists. The program is also supported by funding from North Carolina’s NCEdge initiative.

Mark Moon, the GE Aerospace site leader in Wilmington, stated that the program is essential for growing the local workforce required to deliver critical engine parts to customers. The initiative targets candidates from diverse professional backgrounds who are looking to enter the aerospace manufacturing sector.

“I joined the apprenticeship program to pursue a new career path and create a better future for myself and my family. It’s a great way to step into this field where you can thrive and make a career out of it,” said Joseph Knox, a recent graduate of the program.

Broader manufacturing investments

The Wilmington apprenticeship program operates within the context of a $1 billion U.S. manufacturing investment planned by GE Aerospace for 2026. Of that total, the company allocated $160 million to its North Carolina facilities, with $60 million specifically directed to the Wilmington site to expand capacity and upgrade equipment.

The educational partnership builds on prior philanthropic investments in the region. The GE Aerospace Foundation awarded a $100,000 grant to CFCC in 2024 to support machining bootcamps and scholarships. Additionally, the foundation donated $500,000 in 2025 to the Manufacturing Institute’s Heroes MAKE America initiative. CFCC President Jim Morton noted that the collaboration illustrates the function of community colleges in building the talent pipelines necessary to support regional economic and industrial expansion.

AirPro News analysis

We view the rapid scaling of the Wilmington apprenticeship program as a direct response to the persistent skilled labor shortages bottlenecking global engine production and maintenance, repair, and overhaul (MRO) networks. By vertically integrating the training process and partnering directly with local educational institutions, original equipment manufacturers (OEMs) like GE Aerospace can bypass traditional, slower labor acquisition methods. The specific focus on CNC machining for high-pressure turbine disks and blisks targets the exact components that have historically paced engine delivery schedules and constrained aftermarket support.

Sources: GE Aerospace

Photo Credit: GE Aerospace

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MRO & Manufacturing

AAE Opens 1900sqm MRO Facility at Albury Airport Australia

Australian Aerospace Engineering opens a new MRO facility in Albury, NSW, supporting UH-60M Black Hawk sustainment for the Australian Army.

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Australian Aerospace Engineering (AAE) officially opened a new 1,900-square-meter Maintenance, Repair, and Overhaul (MRO) facility adjacent to Albury Airport (ABX) in New South Wales on August 25, 2026. The purpose-built site consolidates the company’s aerospace maintenance and manufacturing capabilities to support domestic aviation and defense operations.

In a press release issued on August 25, AAE detailed that the new infrastructure expands its capacity to perform complex aerospace work domestically. The opening coincides with an expanded Partnerships announcement from Lockheed Martin Australia, integrating the Albury facility into the sustainment network for the Australian Army’s UH-60M Black Hawk Helicopters fleet.

Facility capabilities and defense integration

The new site brings together multiple specialized services under one roof. These include aircraft maintenance, component overhaul, non-destructive testing (NDT), machining, manufacturing, spare-parts storage, and specialist surface treatment. The facility features a semi-downdraft heated spray booth and an adjoining helipad designed specifically to support maintenance operations for medium to large helicopter platforms.

The infrastructure investment directly supports AAE’s growing role in the Australian defense supply chain. On the same day as the facility opening, Lockheed Martin Australia confirmed the site will support the sustainment of the Australian Army’s UH-60M Black Hawk fleet. AAE also lists Sikorsky Australia, Pilatus Australia, and BAE Systems among its defense and aerospace partners.

Regional economic impact and company growth

The Albury facility marks a significant expansion for AAE, which has operated for more than 20 years. The company has grown its workforce from an initial three-person family business to a current team of 14 employees.

Justin Clancy MP, Member for Albury, officiated the opening ceremony. He noted that the facility provides a foundation for ongoing growth, including the addition of new engineering and technical roles in the coming years.

“The opening of AAE’s new facility is a fantastic outcome for Albury, creating opportunities for highly skilled local jobs and demonstrating what regional Australian businesses can achieve in advanced aerospace and Defence Industries,” Clancy said.

AAE Chief Executive Officer Adam Johnston stated that the new site gives the company the space and resources required to take on more complex work. Prior to the formal opening, the Governor of New South Wales, Margaret Beazley, conducted an official tour of the newly constructed facility on February 18, 2026.

AirPro News analysis

We view the expansion of regional MRO capabilities in Australia as a critical step in building sovereign defense industrial capacity. By locating specialized services like NDT and component overhaul outside major metropolitan hubs, companies like AAE reduce supply chain bottlenecks for critical platforms like the UH-60M Black Hawk. The integration of a dedicated helipad and specialized spray booth indicates a clear strategic focus on rotary-wing sustainment, positioning the Albury site as a specialized node in the broader Lockheed Martin and Sikorsky Australia support network.

Sources: Australian Aerospace Engineering

Photo Credit: Australian Aerospace Engineering

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