Abstract:
This application discloses a method of preparing an assembly. A base assembly is provided and includes a base, and a second fastener structure coupled to the base at a joint. The base assembly is then attached to a receiving element that is configured to physically receive a module and includes a first fastener structure. The first fastener structure is fastened with the second fastener structure and provides a first degree of freedom of motion of the receiving element with respect to the base, and the movement of the receiving element is unlimited in a first direction of travel associated with the first degree of freedom of motion. The receiving element is rotated along the first direction of travel until the receiving element reaches a nominal position at which the receiving element and the module received thereby are configured to face substantially up when they are flipped down via the joint.
Abstract:
A door lock apparatus, comprising a male component; a connection to a power source; a lock actuator, powered by the power source and configured to move the male component at least partially through a strike and into a box beyond the strike in the path of the male component to lock a door, wherein the male component comprises a plurality of parallel subcomponents oriented lengthwise in the direction of a path of the male component; a bed of sensors positioned in the box and configured to sense a number of parallel subcomponents that contact the bed after the male component has been moved into the box; and an alarm in communication with the bed, wherein the alarm is triggered when an attempt is made to lock the door and an insufficient number of parallel subcomponents contacting the bed has been sensed by the bed of sensors.
Abstract:
This application discloses a camera including a holding element and a base assembly. The holding element further includes a camera portion for holding a camera sensor, an extended portion that extends from the camera portion, and a fastener structure coupled to an end of the extended portion located opposite another end of the extended portion where the camera module is located. The base assembly further includes a base shaped to rest against a supporting surface, a joint structure configured to mate with the fastener structure, and a magnet configured to magnetically couple the camera to the supporting surface. In some implementations, the camera further includes a mounting structure that is configured to be attached and fixed onto the supporting surface. The camera is mounted onto the supporting surface when the base of the base assembly magnetically adheres onto the mounting structure.
Abstract:
This application discloses a stand assembly that includes a receiving element for physically receiving a module, and a base assembly for supporting the receiving element. The receiving element further includes a module holding structure, an extended portion, and a first fastener structure coupled to an end of the extended portion. The base assembly includes a base, and a second fastener structure coupled to the base at a joint and configured to mate with the first fastener structure. The first fastener structure and the joint are configured to respectively provide a first degree of freedom of motion and a second degree of freedom of motion of the receiving element with respect to the base. The movement of the receiving element at the first degree of freedom has substantially consistent resistance through first part of a first full range of motion associated with the first degree of freedom of motion.
Abstract:
This application discloses a stand assembly that includes a receiving element for physically receiving a module, and a base assembly for supporting the receiving element. The receiving element further includes a module holding structure, an extended portion, and a first fastener structure coupled to an end of the extended portion. The base assembly includes a base, and a second fastener structure coupled to the base at a joint and configured to mate with the first fastener structure. The first fastener structure and the joint are configured to respectively provide a first degree of freedom of motion and a second degree of freedom of motion of the receiving element with respect to the base. The movement of the receiving element at the first degree of freedom is unlimited in a first direction of travel associated with the first degree of freedom.
Abstract:
A door lock apparatus, comprising a male component; a connection to a power source; a lock actuator, powered by the power source and configured to move the male component at least partially through a strike and into a box beyond the strike in the path of the male component to lock a door, wherein the male component comprises a plurality of parallel subcomponents oriented lengthwise in the direction of a path of the male component; a bed of sensors positioned in the box and configured to sense a number of parallel subcomponents that contact the bed after the male component has been moved into the box; and an alarm in communication with the bed, wherein the alarm is triggered when an attempt is made to lock the door and an insufficient number of parallel subcomponents contacting the bed has been sensed by the bed of sensors.
Abstract:
This application is directed to packaging a camera product. A base is attached to a holding element that is configured to physically hold a camera and includes a holding element fastener structure. The holding element fastener structure is configured to mate with a base fastener structure associated with the base, providing both a first degree of freedom of motion and a second degree of freedom of motion for the holding element relative to the base. The holding element is rotated in a first direction via the first degree of freedom until the holding element reaches a first nominal position. The holding element is rotated in a second direction via the second degree of freedom until the holding element reaches a second nominal position. The holding element is configured to lie substantially in parallel with a planar surface of the base when it is rotated along the first and second directions.
Abstract:
This application discloses a camera including a holding element and a base assembly. The holding element further includes a camera portion for holding a camera sensor, an extended portion that extends from the camera portion, and a fastener structure coupled to an end of the extended portion. The base assembly further includes a base shaped to rest against a supporting surface, and a joint structure configured to mate with the fastener structure. The fastener structure and the joint structure are configured to provide a first degree of freedom of motion and a second degree of freedom of motion of the holding element with respect to the base. The movement of the receiving element at the first degree of freedom is unlimited in a first direction of travel, and the movement of the receiving element at the second degree of freedom is limited in a second direction of travel.
Abstract:
This application is directed to packaging a camera product. A base is attached to a holding element that is configured to physically hold a camera and includes a holding element fastener structure. The holding element fastener structure is configured to mate with a base fastener structure associated with the base, providing both a first degree of freedom of motion and a second degree of freedom of motion for the holding element relative to the base. The holding element is rotated in a first direction via the first degree of freedom until the holding element reaches a first nominal position. The holding element is rotated in a second direction via the second degree of freedom until the holding element reaches a second nominal position. The holding element is configured to lie substantially in parallel with a planar surface of the base when it is rotated along the first and second directions.
Abstract:
This application discloses a stand assembly that includes a receiving element for physically receiving a module, and a base assembly for supporting the receiving element. The receiving element further includes a module holding structure, an extended portion, and a first fastener structure coupled to an end of the extended portion. The base assembly includes a base, and a second fastener structure coupled to the base at a joint and configured to mate with the first fastener structure. The first fastener structure and the joint are configured to respectively provide a first degree of freedom of motion and a second degree of freedom of motion of the receiving element with respect to the base. The movement of the receiving element at the first degree of freedom has substantially consistent resistance through first part of a first full range of motion associated with the first degree of freedom of motion.