Abstract:
A locking mechanism includes a housing, a hinge, a fastening member, and an actuating member. The housing defines a receiving space therein and is formed with a through hole. The hinge includes a connecting support disposed in the receiving space and a rotary member operable to pivot relative to the connecting support, and having an engaging segment. The fastening member is disposed in the receiving space, is registered with the through hole, and is formed with an engaging slot for engaging the engaging segment. The actuating member removably extends into the through hole and is operable to actuate the fastening member to move between locked and unlocked positions, where the engaging segment and the engaging slot are engageable and non-engageable, respectively.
Abstract:
A hinge assembly includes a guiding rail, at least one protruding block, a slidable element, and a rotatable element. The guiding rail includes a first side and a second side surface opposite to each other. The guiding rail further includes a first edge and a second edge in parallel to a longitudinal direction of the guiding rail. The protruding block is disposed on the first side surface. The width of the protruding block is smaller than that of the first side surface, and a gap exists between the protruding block and the first edge. The slidable element includes a sliding surface and a guiding surface opposite to each other. The first edge of the guiding rail inserts into a chute formed on the sliding surface to move the slidable element along the first edge. The rotatable element is pivoted to the slidable element to rotate on the slidable element.
Abstract:
A wireless charging adapter, comprising: a main body; a receiver, which is disposed in the main body and is provided to receive a first charging magnetic field of a first wireless charging standard from the outside of the main body and convert the first charging magnetic field to a charging energy; and a transmitter, which is disposed in the main body and electrically connected to the receiver, being provided to convert the charging energy to a second charging magnetic of a second wireless charging standard and transmit the second charging magnetic field to the outside of the main body, wherein the first wireless charging standard is different from the second wireless charging standard, so as to charge a electronic device when the wireless charging standards used by the electronic device and a wireless charger do not match.
Abstract:
An electronic device including a housing, a cover plate, and a button is provided. The cover plate is separably disposed on the housing and corresponds to an opening on the housing. A groove is formed on an edge of the cover plate. The button pivotally connects to an edge of the housing which encompasses the opening. The button can rotate on a housing plate of the housing and corresponds to the position of the groove. The button is behind the edge of the housing while the button is in a release position; a portion of the button extends out and into the groove of the cover plate while the button rotates to a lock position.
Abstract:
A battery ejecting structure is applied to a portable electronic device which comprises a housing and a battery. The battery ejecting structure comprises an ejecting element, a cover, a pushing element and an elastic element. The ejecting element is movably located in the container of the housing; the cover is connected pivotally to the housing and covers the container to be a closed state, and the cover restricts the ejecting element to move via a blocking element; the pushing element is located in the housing, and the fixed member of the ejecting element is connected to the pushing element through the housing. Wherein when the cover is rotated relative to the housing to form an open state, the blocking element disengages from the container, and the pushing element is moved by an elastic restoring force of the elastic element to unlock the battery.
Abstract:
A hinge assembly includes a guiding rail, at least one protruding block, a slidable element, and a rotatable element. The guiding rail includes a first side and a second side surface opposite to each other. The guiding rail further includes a first edge and a second edge in parallel to a longitudinal direction of the guiding rail. The protruding block is disposed on the first side surface. The width of the protruding block is smaller than that of the first side surface, and a gap exists between the protruding block and the first edge. The slidable element includes a sliding surface and a guiding surface opposite to each other. The first edge of the guiding rail inserts into a chute formed on the sliding surface to move the slidable element along the first edge. The rotatable element is pivoted to the slidable element to rotate on the slidable element.
Abstract:
A battery ejecting structure with the pad function is applied to a portable electronic device which comprises a housing and a battery. The battery ejecting structure of the present invention comprises a pad, a pushing element and a blocking element. The pad is located movably in a container of the housing and comprises a fixed member. The pushing element is located in the housing, and the fixed member of the pad is connected to the pushing element through the housing. The pushing element comprises a lock structure for locking the battery in an initial position. The blocking element is located movably in the container next to the pad. While the blocking element is disengaged from the container, the pushing element is moved from the initial position to a release position by the movement of the pad to unlock the battery.
Abstract:
A battery ejecting structure with the pad function is applied to a portable electronic device which comprises a housing and a battery. The battery ejecting structure of the present invention comprises a pad, a pushing element and a blocking element. The pad is located movably in a container of the housing and comprises a fixed member. The pushing element is located in the housing, and the fixed member of the pad is connected to the pushing element through the housing. The pushing element comprises a lock structure for locking the battery in an initial position. The blocking element is located movably in the container next to the pad. While the blocking element is disengaged from the container, the pushing element is moved from the initial position to a release position by the movement of the pad to unlock the battery.
Abstract:
A locking mechanism includes a housing, a hinge, a fastening member, and an actuating member. The housing defines a receiving space therein and is formed with a through hole. The hinge includes a connecting support disposed in the receiving space and a rotary member operable to pivot relative to the connecting support, and having an engaging segment. The fastening member is disposed in the receiving space, is registered with the through hole, and is formed with an engaging slot for engaging the engaging segment. The actuating member removably extends into the through hole and is operable to actuate the fastening member to move between locked and unlocked positions, where the engaging segment and the engaging slot are engageable and non-engageable, respectively.
Abstract:
An electronic device including a housing, a cover plate, and a button is provided. The cover plate is separably disposed on the housing and corresponds to an opening on the housing. A groove is formed on an edge of the cover plate. The button pivotally connects to an edge of the housing which encompasses the opening. The button can rotate on a housing plate of the housing and corresponds to the position of the groove. The button is behind the edge of the housing while the button is in a release position; a portion of the button extends out and into the groove of the cover plate while the button rotates to a lock position.