Abstract:
The subject disclosure describes, among other things, illustrative embodiments of an impact protection device that comprises the following elements: a machine, a protective structural member, and a fluid holding member. The impact protection device is designed to protect a user from an impact to the protective structural member by dissipating a portion of the kinetic energy of the impact. Machine operation translates into a controlled movement between elements of the impact protection device that deform the fluid holding member, thereby displacing a fluid. This controlled movement also dictates a throttling profile that regulates the amount of damping; thereby managing the portion of kinetic energy dissipated. The machine can be a mechanical assembly incorporating levers, cams and or computerized controllers.
Abstract:
An airbag system for protecting a body part of a user (3) in case of an accident is provided. The system comprises an airbag (20) adapted for inflation upon an accident occurring during an intended activity, at least one sensor (80; 85) configured to measure movements of the airbag system (100), and thus indirect the movements of the user (3) and a control unit (50) configured to determine if the user (3) is in a first activity state not corresponding to the intended activity by processing the output from the at least one sensor (80; 85).
Abstract:
A night vision goggle adapter, the adapter includes a knob, a yoke, the yoke includes an attachment portion operably connected to a helmet mount, a spring operably placed between the knob and yoke, a shaft, the shaft includes a first end operably connected with the knob, and a second end, a head, the head receives a portion of the shaft and is attached to a night vision google, and a cam pivotally mounted to the second end of the shaft for movement between a release and clamped position to respectively disengage and engage the adapter to the head.
Abstract:
The present technology relates to a helmet of a layered and segmented design including impact attenuation structures. The helmet can include a series of layers that individually, or in combination, provide the necessary functions of the helmet. The helmet may feature a layer with a low coefficient of friction to act as a slip layer and slide due to rotational force. The present technology includes impact attenuation structures of predetermined geometries, layers, and materials to allow for an appropriate impact response with a certain degree of control over the buckling process and an adaptive impact response. The present technology of impact attenuation structures may be applicable where impact absorption and controlled buckling is desired, such as bike helmets.
Abstract:
Embodiments generally relate to personal protective equipment (PPE) (such as gloves, shoes/boots, hoods, protective clothing, etc.) for industrial applications. More specifically, the invention relates to using magnetic particles (e.g. incorporated within or attached/affixed to the PPE) so that a magnetic scan may be run to determine a change (e.g. decrease) in initial magnetic field signature (MFS) for the PPE). The change in MFS is used to determine end of service life of the PPE (such that the protective equipment should be retired or repaired).
Abstract:
The present disclosure is directed to an helmet-facemasks system including a facemask, shock-absorbant mechanism facemask holders/clips and attaching mechanisms thus holding the face protective gear, including but not limit to facemask and chin guard. The shock-absorbant mechanism in combination with the clips, attaching mechanism and facemask are attached to the helmet in a fixed position while assisting with minimizing the impact force transfer by maximizing impact energy absorption.
Abstract:
A protective helmet including a visor attached to the external sides of the helmet shell and a catch strip running along a top portion of the visor spanning at least a portion of the visor. The catch strip protrudes from the visor such that it can prevent a cloth helmet cover from easily sliding off the helmet. The catch strip is attached to the front side of the visor, opposite the shell, such that the catch strip is not in a field of vision of a user when wearing the helmet.
Abstract:
A bespoke protective sports helmet to be worn by a player engaged in a sporting activity is provided. The bespoke helmet includes i) systems and methods for acquiring, storing and processing a player's unique data, namely the player's anatomical features, where that player is to wear a protective sports helmet, (ii) for systems and methods of using the player's unique data to manufacture a protective sports helmet with a custom formed internal padding assembly that substantially corresponds to the player's unique data, and (iii) a protective sports helmet designed using the acquired and processed unique player's data and including the custom formed internal padding assembly that provides improved fit and comfort for the player. The system and method allows for the design and manufacture of a bespoke protective sports helmet that is purposely designed and manufactured to match the player's anatomical specifications.
Abstract:
The present invention is a football helmet designed to reduce the occurrence of concussions and subconcussive impacts to the brain through use of a novel exterior shape and sandwich of materials. The present invention also reduces the occurrence of neck injuries through the use of a flexible neck support that provides protection against frontal impacts without restricting a player's range of motion.