Energy absorption device Patent
Energy absorption device in high precision gear train for protection against damage to components caused by stop loads
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Energy absorption device in high precision gear train for protection against damage to components caused by stop loads
Materials for fragmenting tube energy absorption process - spacecraft landing
Dynamic energy absorption characteristics of aluminum frangible tube - load tests
Deforming energy absorption system for protection of space vehicle during impact landing
Material deformation mechanisms and requirements for energy absorption during impact landing of space vehicles such as lunar excursion module
High frequency energy absorption by plasma in ion cyclotron resonance in strong, high frequency fields
Energy absorption in omnidirectional gamma rays determined by spectral measurements, chemical analysis, and irradiation studies
Multiple-impact study of energy absorbing devices with cyclic material straining for space landing application
Materials to absorb impact energy of spacecraft during landing
Energy absorbing characteristics of crushable aluminum structures in space environment
Casting and compression testing of cellular aluminum alloys for applications requiring kinetic energy dissipation
Measurement of radiation dosage from spatial gamma rays
Composite materials have become ubiquitous in the aerospace industry due to their exceptionally light weight and high strength characteristics, as well as their unique ability to be engineered and tailored to meet specific loading conditions and performance requirements. These advanced materials offer superior strength-to-weight ratios compared to traditional metallic materials, making them particularly valuable in weight-critical aerospace applications where every pound saved translates to improved efficiency and performance. In currently operating fleets of commercial and military aircraft, composite materials have been successfully applied to critical structural components, including primary load-bearing elements such as the fuselage sections and flooring structures, which must withstand significant in-flight loads and provide passenger safety. Additionally, these materials have been specifically tailored and optimized for aerodynamic components such as wings and tail assemblies, where their ability to be molded into complex shapes while maintaining structural integrity is particularly advantageous. The application of composite materials extends beyond primary structural elements into the realm of internal cabin components, most notably in innovative seat designs where weight reduction and structural integration are paramount concerns. Modern composite seat structures can be designed to integrate multiple functions, including structural support, comfort features, and safety systems, all while maintaining the lightweight characteristics essential for aircraft performance.
Radiant energy absorption of a rectangular-groove cavity for both diffuse and specular reflector surfaces
RF energy absorption by plasma column surrounded by periodic coupling structure, noting similarities with Landau damping and measurements of non-Maxwellian distributions
An impulse-momentum method for determining impact conditions for landing gears in eccentric landings is presented. The analysis is primarily concerned with the determination of contact velocities for impacts subsequent to initial touchdown in eccentric landings and with the determination of the effective mass acting on each landing gear. These parameters determine the energy-absorption requirements for the landing gear and, in conjunction with the particular characteristics of the landing gear, govern the magnitude of the ground loads. Changes in airplane angular and linear velocities and the magnitude of landing-gear vertical, drag, and side impulses resulting from a landing impact are determined by means of impulse-momentum relationships without the necessity for considering detailed force-time variations. The effective mass acting on each gear is also determined from the calculated landing-gear impulses. General equations applicable to any type of eccentric landing are written and solutions are obtained for the particular cases of an impact on one gear, a simultaneous impact on any two gears, and a symmetrical impact. In addition a solution is presented for a simplified two-degree-of-freedom system which allows rapid qualitative evaluation of the effects of certain principal parameters. The general analysis permits evaluation of the importance of such initial conditions at ground contact as vertical, horizontal, and side drift velocities, wing lift, roll and pitch angles, and rolling and pitching velocities, as well as the effects of such factors as landing gear location, airplane inertia, landing-gear length, energy-absorption efficiency, and wheel angular inertia on the severity of landing impacts. -A brief supplementary study which permits a limited evaluation of variable aerodynamic effects neglected in the analysis is presented in the appendix. Application of the analysis indicates that landing-gear impacts in eccentric landings can be appreciably more severe than impacts in symmetrical landings with the same sinking speed. The results also indicate the effects of landing-gear location, airplane inertia, initial wing lift, side drift velocity, attitude, and initial rolling velocity on the severity of both initial and subsequent landing-gear impacts. A comparison of the severity of impacts on auxiliary gears for tricycle and quadricycle configurations is also presented.
Energy transmitting characteristics and wall local energy absorption distribution of curved specular reflecting duct irradiated by collimated beam
Radiative heating of H and He containing suspension of solid particle absorbers, noting proportionality between gas particle dispersion decrease and energy absorption