Abstract:
FIG. 1 is a front perspective view of a firearm storage container, showing my new design; FIG. 2 is a rear perspective view thereof; FIG. 3 is a top plan view thereof; FIG. 4 is a front elevational view thereof; FIG. 5 is a bottom plan view thereof; FIG. 6 is a right-side elevational view thereof; FIG. 7 is a rear elevational view thereof; and, FIG. 8 is a left-side elevational view thereof. The broken lines in the figures depict portions of the firearm storage container that form no part of the claimed design.
Abstract:
One embodiment of the present invention relates to an avalanche safety system including an inflatable chamber, activation system, inflation system, harness, and a container. The inflatable chamber is a three-dimensionally, partially enclosed region having an inflated state and a compressed state. The inflated state may form a particular three dimensional shape configured to protect the use from impact and/or provide flotation during an avalanche. The inflation system is configured to transmit ambient air into the inflatable chamber. The harness may be a backpack that enables a user to transport the system while engaging in activities that may be exposed to avalanche risk. The container is releasably coupled to the harness including a coupled and a separate state. The container independently includes a container chamber that is selectively enclosable by a container opening. The releasable coupling between the container and the harness may include a periphery zipper type coupling.
Abstract:
One embodiment of the present invention relates to an avalanche safety system including an inflatable chamber, activation system, inflation system, harness, and a container. The inflatable chamber is a three-dimensionally, partially enclosed region having an inflated state and a compressed state. The inflated state may form a particular three dimensional shape configured to protect the use from impact and/or provide flotation during an avalanche. The inflation system is configured to transmit ambient air into the inflatable chamber. The harness may be a backpack that enables a user to transport the system while engaging in activities that may be exposed to avalanche risk. The container is releasably coupled to the harness including a coupled and a separate state. The container independently includes a container chamber that is selectively enclosable by a container opening. The releasable coupling between the container and the harness may include a periphery zipper type coupling.
Abstract:
One embodiment of the present invention relates to an active camming device including a head member, a set of cam lobes, a connection system, and a retraction system. The cam lobes are configured to rotate between a retracted state and a spring biased extended state. The connection system includes a lengthwise cable coupled to the terminal. The retraction system is uniquely configured to enable selective engagement of the retracted state of the cam lobes with respect to the cam head. The retraction system includes slidably externally coupling a trigger and retraction sleeve to the cam lobes over the cable. A set of independent sleeves are also slidably coupled to the cable over the retraction sleeve between the trigger and cam lobes. The independent sleeves may be conically shaped and oriented to adjacently internest with one another so as to protect the retraction sleeve during operation of the refraction system.
Abstract:
One embodiment of the present invention relates to an improved wire-gate carabiner system including a frame, gate, and gate biasing system. The gate is pivotably coupled to the frame across an opening to form a continuously enclosed inner region in a closed configuration. The gate may be referred to as a wire-type gate in that it includes an arch and two ends. The arch is looped over a hook disposed on the keyed region of the frame in the closed configuration. The two ends are pivotably coupled to the frame at two independent gate coupling points on the pivot region so as to utilize the torsional rigidity of the gate structure as the gate biasing system. The keyed region of the frame includes a hook and a cover. The cover is oriented and shaped to laterally shield the arch and hook from undesirable couplings.
Abstract:
One embodiment of the present invention relates to an improved wire-gate carabiner system including a frame, gate, and gate biasing system. The gate is pivotably coupled to the frame across an opening to form a continuously enclosed inner region in a closed configuration. The gate may be referred to as a wire-type gate in that it includes an arch and two ends. The arch is looped over a hook disposed on the keyed region of the frame in the closed configuration. The two ends are pivotably coupled to the frame at two independent gate coupling points on the pivot region so as to utilize the torsional rigidity of the gate structure as the gate biasing system. The keyed region of the frame includes a hook and a cover. The cover is oriented and shaped to laterally shield the arch and hook from undesirable couplings.
Abstract:
A power transmission device includes a housing, a differential assembly having a case and a bearing assembly rotatably supporting the case within the housing. A preload is applied to the bearing assembly along a load path. A shim is positioned in the load path with the bearing assembly. The shim is constructed at least in part from a material having a predetermined coefficient of thermal expansion such that the shim is operable to compensate for different rates of thermal expansion in the components within the load path to maintain a desired bearing preload or a range of operating temperatures.
Abstract:
An embodiment of an electronic apparatus may include one or more substrates, and logic coupled to the one or more substrates, the logic to control local access to a persistent storage media and, in response to one or more commands, to determine an intermediate parity value based on a first local parity calculation, locally store the intermediate parity value, and determine a final parity value based on the intermediate parity value and a second local parity calculation. Other embodiments are disclosed and claimed.
Abstract:
One embodiment of the present invention relates to an avalanche safety system including an inflatable chamber, activation system, inflation system, and a harness. The inflatable chamber is a three-dimensionally, partially enclosed region having an inflated state and a compressed state. The inflated state may form a particular three dimensional shape configured to protect the user from burial and provide flotation during an avalanche. The activation system is configured to receive a user-triggered action to activate the system. The inflation system may include an air intake, battery, fan, and internal airway channel. The inflation system is configured to transmit ambient air into the inflatable chamber. The harness may be a backpack that enables a user to transport the system while engaging in activities that may be exposed to avalanche risk. The harness may include hip straps, shoulder straps, internal compartments, etc.
Abstract:
Various systems and methods for implementing intent-based cluster administration are described herein. An orchestrator system includes: a processor; and memory to store instructions, which when executed by the processor, cause the orchestrator system to: receive, at the orchestrator system, an administrative intent-based service level objective (SLO) for an infrastructure configuration of an infrastructure; map the administrative intent-based SLO to a set of imperative policies; deploy the set of imperative policies to the infrastructure; monitor performance of the infrastructure; detect non-compliance with the set of imperative policies; and modify the administrative intent-based SLO to generate a revised set of imperative policies that cause the performance of the infrastructure to be compliant with the revised set of imperative policies.