USAF: Contract to CAE for Aeromedical Evacuation Training System

Evacuation Training SystemCAE announced it has been awarded a contract through ADS Inc. and the Defense Logistics Agency (DLA) Tailored Logistics Support (TLS) program to provide the United States Air Force Reserve Command (AFRC) at Dobbins Air Force Base with a comprehensive Aeromedical Evacuation Training System.

The Aeromedical Evacuation Training System, which can be developed for a range of air mobility aircraft platforms, will provide AFRC with a realistic training environment that will be used to prepare aeromedical evacuation crews for pre-flight and emergency procedures as well as in-flight patient care.

CAE will provide a high-fidelity C-130 fuselage trainer that is configured for aeromedical evacuation missions. Within the C-130 fuselage trainer will be CAE Healthcare iStan human patient simulators, which feature internal robotics that mimic human cardiovascular, respiratory and neurological systems. When iStan bleeds, his blood pressure, heart rate and other clinical signs change automatically, and he responds to treatment with minimal input from an instructor. The overall Aeromedical Evacuation Training System provided by CAE will include courseware and curriculum, as well as a hand-held, wireless tablet instructor operator station to provide full control and customization of a variety of training scenarios.

“We are pleased to be working with ADS, who helped the Air Force identify the best solution for their aeromedical training requirements and provided an efficient contracting solution for the procurement of CAE’s Aeromedical Evacuation Training System,” said Ray Duquette, President and General Manager, CAE USA. “The comprehensive, integrated, off-the-shelf training solution we provide will enable the U.S. Air Force to more cost-effectively train both aircrews and medical personnel for critical aeromedical evacuation missions.”

“This program is a great example of CAE’s unique training systems integrator capabilities where we can leverage our extensive air mobility simulation and training experience and combine it with world-class human patient simulators from CAE Healthcare, which demonstrates the unique synergies CAE can achieve between its defence and healthcare business units,” said Gene Colabatistto, CAE’s Group President, Defence and Security.

Source : CAE

New Synthetic Bones Help Army Scientists Get Closer to New ‘brain’ Defenses

Shock waves from battlefield explosions are invisible threats for U.S. Soldiers and their top-of-the-line combat helmets, but with new studies in synthetic human physiology, researchers are learning how to lessen blast wave effects on the brain.

Exactly how, and to what degree, these waves cause brain damage is what the U.S. Army Research Laboratory scientists and engineers and a group of university partners are trying to answer as part of a multi-year, multi-disciplinary research project.

In a related research project, Army researchers are investigating new material development for helmet padding systems, and from this research, they expect greater insight and innovation in addressing what is likely to be the next big development in head protection: strategies for mitigating the effects of blast.

They’re creating synthetic cranial bones that look and behave like the skulls of 20- and 30-year old Soldiers that will be tested in laboratory experiments that mimic combat-like blast events in hopes of improving military helmet pads, shells, and other protective equipment.

Dr. Thomas Plaisted, materials engineer in the Materials and Manufacturing Science Division at the ARL, said even though synthetic bones are commercially available, they’re used primarily by doctors to practice surgical procedures. But, their design prevents them from “behaving like real human bones when subjected to blast tests.”

“The mechanical properties of the human skull change with age and depend on the health of the individual. Donor skulls that may be available for testing would typically come from older people, and the properties of those skulls can be highly variable and may not have the same response as the average skull of the Army Soldier population,” said Plaisted.

He said this is among the variables that “add uncertainty when trying to evaluate head protection devices, like helmets.”

“So we are developing our own synthetic bone, [and] capturing material and architecture response, specific to the human skull.”

A simulated skull ARL researchers are developing is made of synthetic materials, with the goal of creating a uniform response that is representative of the Soldier population to use in tests to understand how to best protect the head during exposure to blast waves and blunt impact.

“The cranial bones have a highly-graded structure, from a tough outer layer, a spongy inner section, to a more brittle inner layer, which together are responsible for how it responds under impact conditions, he said.

Slice-by-slice images taken from a CT scan help researchers get the geometry and structure of the skull right. ARL composite materials, combined with these images, and 3-D printing technology, produce models of bone-like surrogates that ARL researchers will use to test new helmet padding materials in simulated blast and impact conditions. The goal is to determine how the pads and helmet shell materials protect the head from injury, Plaisted said.

“We are developing new helmet padding materials to improve the impact protection afforded by the Army’s helmets. The helmet can withstand impact at a certain velocity, while protecting the head from accelerations that would lead to injury. In the extreme case, excessive acceleration may lead to skull fracture,” he said.

“We are using computer modeling of head and helmet impacts to understand how tailoring the padding properties can reduce acceleration at various impact locations around the helmet,” Plaisted explained. “Then, those properties are engineered into materials and tested in the laboratory to validate what we are seeing in the computer models. The research is giving insight on optimal material structures and material combinations that achieve increased energy absorption while still being comfortable to wear.”

Earlier this year, ARL evaluated the base material of the synthetic bone by hitting it at a high rate, and comparing the fracture properties to human bones tested by the same technique. They’ve determined it to be a “close match” to human bones, he said.

“Our next step is in determining the limits of resolution we can achieve with the 3-D printing, and how fine the resolution needs to be to capture the properties we are looking for.”

He said he expects to start printing synthetic skulls with 3-D technology by the fall.

“Part of ARL’s mission is to take varying levels of risk in finding state of the art science and developing the technologies that could potentially provide the Soldier with more protection, more capability, or both,” said Dr. Shawn Walsh, who leads ARL’s Agile Manufacturing Technology Team. “What is equally important is that ARL strategically reduce the risk of these new technologies so that centers, such as the Natick [Soldier Research, Development and Engineering Center], can begin to think about how they would integrate into a larger Soldier “system.” Many of ARL’s material, processing, and conceptual technologies were transitioned and demonstrated in NSRDEC’s “HEaDS UP” program.”

“[Dr. Plaisted’s] efforts are unique in that he is bringing fundamental material science and modeling to the dual problem of accurately representing biological systems (for example the skull) and coupling this biological model to a materials model to provide better insight on how impulses are transmitted during an impact to the helmet and head. Such insight will lead to new and quantifiably proven methods for reducing the adverse effects of violently applied forces to the head and helmet system,” Walsh said.

The research is also the focus of the latest episode of “Inside the Lab,” an ARL-produced feature news broadcast.

Source : US Army