A multi-function block spaces a binding from a deck using fastening holes and a three-dimensional polygonal shape.
A ski binding front unit uses a wide closing actuation section to guide boot alignment.
A synthetic bocce court surface uses a foam force-reduction layer and elastomeric particles to achieve proper ball bounce.
An electronic binding release mechanism uses sensor signals to trigger an actuator, enabling earlier detachment under extreme forces.
Integrating elastic springs and guide pins into hinged jaws reduces component count, lowering weight and assembly complexity for alpine ski bindings.
Adjustable fitness arena structures and sensors evaluate reactive agility through dynamic sport-specific activity simulation.
Electric actuator slides ski binding longitudinally to optimize grip and glide without stopping.
A gravity-based heel elevator device automatically aligns ski boot soles with terrain inclination using a pendulum mechanism.
A lateral support integrates with ski bindings to enhance bending rigidity between the boot and the ski.
A ski binding toe-piece uses a torsion spring to generate rotation torque on an activating lever.
Square court layout with beveled walls and modular nets reduces safety risks while supporting multi-sport play.
An adjusting element modifies the available volume between an activating lever and a rotating pivot to set the blocking force in a ski binding toe-piece.
A glide board binding front unit uses a cam mechanism to convert rotary movement into an opening motion for the shoe holding device.