As the catapult troughs for the USS Ford’s EMALS system were being built and integrated with the overall system, the system’s technology has been in the process of extensive testing at a Naval Air Warfare Center facility in Lakehurst, N.J.
“The testing has allowed us to stay ahead of the curve and identify issues in advance of installing it on the rest of the ships,” Moore said.
Ship integration and testing for the EMALS technology will mark a substantial milestone in a program which, until now, has widely been conducting ground-based flight tests at the Navy facility in Lakehurst, N.J., Moore explained.
“As things get connected they will increase the number of tests. The first aircraft launch will be after the ship gets to sea. We’ve conducted 452 aircraft launches and just finished up our second phase of aircraft compatibility testing,” Capt. Jim Donnelly, program manager for aircraft launch and recovery equipment, told Military.com in a recent interview.
“We’ve been making component deliveries to the ship (USS Ford) in Newport News since 2011. It started early because for EMALS, some of the equipment such as the motor-generators are lower in the ship so they had to be part of the super-lift early on,” Donnelly added.
Metal decking is slated to be placed over the trough on the flight deck. Special Cabling and linear induction motor sections have been installed on board the USS Ford already.
The linear motors are engineered to help in creating a sequentially activated rolling magnetic field or wave able to thrust or propel aircraft forward, Donnelly explained.
“It is the same type of technology that you see in a rollercoaster except this one is designed for critical launch reliability. It has to work every time you press the launch button. You are getting an electromagnetic field by turning on linear motor sequentially so we don’t energize the whole field in one shot,” he explained.
The electromagnetic field acts on a large 22-foot long aluminum plate, he added. The aluminium plate runs in between stationary sections of 12-foot long linear motors. Electricity runs swiftly through the two sides of the motors, creating an electromagnetic wave, Donnelly explained.
“The aircraft motors are kicked in at the beginning. There’s a hydraulic piston that pushes a shuttle forward. The shuttle is what connects to the aircraft launch bar,” Donnelly said.
The EMALS system can adjust to different aircraft weights and configurations, Donnelly said. For example, EMALS is configured such that it could launch a lighter weight aircraft, such as an unmanned aircraft system, he added.
This is particularly useful because the amount of thrust needed to launch an aircraft depends upon a range of interwoven factors to include size, shape and weight of the aircraft, wind speed on the carrier deck and the speed of the aircraft carrier in the water, Donnelly said.
“EMALS better supports the air wing now and in the future. As you may know we’ve changed the make-up of the carrier wing over the years. We’re getting to an air wing that requires higher energy launches and EMALS is much more capable when it comes to higher launch energy requirements,” Donnelly said.
The USS Ford is able to quickly generate 13,800 volts of electrical power, more than three times the 4,160 volts that a Nimitz-class carrier generates, Moore said.
The EMALS system is also engineered to work in tandem with the USS Ford’s new Advanced Arresting Gear, or AAG. Unlike the existing hydraulic system used on current aircraft carriers, AAG is a mechanical electrical system with a cable that spins a water twister, Moore explained.
Similar to the EMALS, the AAG is also designed to reduce stress on the airframe during the landing process, Moore said.
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Related Questions
What is EMALS (the Electromagnetic Aircraft Launch System)?
EMALS is the US Navy's Electromagnetic Aircraft Launch System, a catapult that uses a powerful electromagnetic field instead of pressurised steam to fling aircraft off a carrier deck. It was developed to replace traditional steam catapults on the Navy's newest carriers.
How does an electromagnetic aircraft catapult work?
An electromagnetic catapult uses a linear induction motor: stored electrical energy is released as a precisely controlled pulse that drives the launch shuttle down the track. Because the energy is dialled electronically, the system can match the exact weight of each aircraft and accelerate it to the precise launch speed needed.
What replaced steam catapults on US aircraft carriers?
The Electromagnetic Aircraft Launch System (EMALS) replaced steam catapults. Steam catapults use pressurised steam, a launch valve and a piston, while EMALS uses a measured electrical pulse, giving smoother, more precise acceleration and less stress on airframes.
Which aircraft carrier first used EMALS?
The first ship fitted with EMALS was the USS Gerald R. Ford (CVN 78), the lead vessel of the new Ford-class of aircraft carriers. Its below-deck transformers, rectifiers and motor-generators store and convert power for the launch motors.
How are jets launched from an aircraft carrier?
Carrier jets are flung into the air by a catapult that accelerates them from a standstill to flying speed in a couple of seconds along a short deck. Older carriers use steam catapults; new US carriers use EMALS. Many famous carrier jets, like the one in our look at whether you can fly an F-14 Tomcat, were launched this way.
Why is EMALS considered better than steam catapults?
EMALS offers finer control: operators can dial in the precise weight and required end-speed for each aircraft, producing smoother acceleration that reduces stress on airframes and pilots. It is also intended to be more reliable and easier to maintain than the heavy steam plumbing it replaces.





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