Abstract:
A safety valve replaces a tire valve. The valve includes a generally elongate hollow main body having an upper portion, a lower flex hose connector, a side tubular branch having a valve seat with a ball valve, an electronics housing having a battery, motor and a drive pin for the ball valve. The lower flex hose connector is adapted for connection to a flex hose or valve stem of the vehicle tire. The side branch branches from the main body and communicates with the hollow interior of the main body. The side branch has a plurality of air exit apertures at its periphery. The valve seat includes a base with an aperture therein through which the drive pin can extend through to engage the ball valve. The ball valve sits in the base and is biased in the valve seat via a spring to cover the aperture.
Abstract:
An improved deflator valve is described herein. The deflator valve has a main body with one or more ports, one or more vents, or port or vent slots for introducing air into or relieving pressure from within the main body in a vortex, circular flow. The deflator valve also includes a piston having an O-ring disposed around an outer circumference of the piston. The O-ring of the piston and the ports and vents are effective for reducing noise and deflation time and improving accuracy and ease of adjusting a pressure setting. The deflator valve can further include a dual or variable rate spring that can achieve an extensive destination pressure range. The deflator valve can also include a threadless lead in, fewer valve stem threads, or a lock chuck for enhanced valve stem attachment methods.
Abstract:
A system includes a fluid controller coupled to an inflatable bladder and configured to add fluid to and remove fluid from the inflatable bladder, a control unit configured to provide information used by the fluid controller to adjust the pressurization of the inflatable bladder, the control unit including a user interface configured to display a plurality of indicia corresponding to a range of pressure levels in which the inflatable bladder is employed by a user, where each of the plurality of indicia is associated with a different level of pressure of the inflatable bladder, respectively. In one embodiment, the fluid controller is configured to adjust the pressurization, in response to a user input at the user interface, to a pressure level selected by the user based on a current pressure level of the inflatable bladder, the pressure level selected by the user and an operating time of the fluid controller.
Abstract:
A valve for selectively sealing and unsealing an opening in a bladder is disclosed. The valve includes a flange for mounting the valve around the opening in the bladder, a valve seat supported on the flange, and an air passageway. A spring plate is supported on the flange and spaced from the valve seat. A floating valve disk is provided between the valve seat and the spring plate for movement towards and away from the valve seat to seal and unseal the opening in the bladder. A spring is provided to bias the floating valve disk towards the valve seat. Deflation lugs are provided to hold the floating valve disk away from the valve seat against the force of the spring. The floating valve disk is free to pivot but is prevented from pivoting to such an extent that movement of the floating valve disk is impeded as by binding.
Abstract:
An air bag packaging arrangement includes an air bag and an air valve. The air bag includes first and second cell overlapped layers to form an air chamber and a valve opening. The air valve includes first and second sealing films overlapped between the first and second cell layers, and a check sealing film overlapped between proximal portions of the first and second sealing films to define an air inflating channel between the first sealing film and the check sealing film, and a backflow prevention channel between the check sealing film and the second sealing film. In case of air leakage, the air is guided to flow to the backflow prevention channel for creating a supplemental air pressure to further seal and close the air inflating channel, so as to make up a deficient sealing effect of the first and second sealing films.
Abstract:
A method of venting a tire inflation system includes providing a housing and providing a first valve assembly within the housing. The first valve assembly venting a first fluid conduit disposed within the housing. A second valve assembly is provided and attached to the first fluid conduit. The second valve assembly venting a first fluid control circuit.
Abstract:
A relief valve is configured to fit between the outlet of a hand pump and the inlet of an inflatable device to prevent the inflatable device from being inflated beyond a desired pressure. The relief valve can also be used to bleed excess air out of an inflatable device that is above its desired pressure.
Abstract:
A controlling mechanism for an inflatable object has a valve controlling assembly for opening/closing operation of the valve, a pressure controlling assembly for sensing pressure difference to selectively activate operation of the valve and a linkage assembly interactively arranged between the valve controlling assembly and the pressure controlling assembly to sense operation of the pressure controlling assembly and consequently operate movement of the valve controlling assembly.
Abstract:
Devices utilized to enhance insulating properties at high temperatures. Such devices can include two gas compartments. A main gas compartment can function as a main layer and generally contains a layer of a gas (e.g., Xenon) having a relatively small thermal conductivity. The plates of the main gas layer can be separated by a soft seal, so that the main gas does not leak and the main layer expands easily. A second gas compartment can be configured as a vented compartment filled with air. At high temperatures, the main gas expands while the secondary gas volume shrinks. Since the main gas possesses a lower thermal conductivity, the effective resistance of the device increases, causing an enhancement in the insulating properties at large operating temperatures. A series of gas compartments can be utilized for additional enhancement in insulating properties.
Abstract:
A system includes a fluid controller coupled to an inflatable bladder and configured to add fluid to and remove fluid from the inflatable bladder, a control unit configured to provide information used by the fluid controller to adjust the pressurization of the inflatable bladder, the control unit including a user interface configured to display a plurality of indicia corresponding to a range of pressure levels in which the inflatable bladder is employed by a user, where each of the plurality of indicia is associated with a different level of pressure of the inflatable bladder, respectively. In one embodiment, the fluid controller is configured to adjust the pressurization, in response to a user input at the user interface, to a pressure level selected by the user based on a current pressure level of the inflatable bladder, the pressure level selected by the user and an operating time of the fluid controller.