Abstract:
A system may comprise a first switch connected to an output of a first power source, a second switch connected to an output of a second power source, a first sensor connected to an output of the first switch, a second sensor connected to an output of the second switch, a third switch connected to the first sensor and the second sensor and connected to a load, and a control device connected to the first switch, the second switch, the first sensor, the second sensor, and the third switch.
Abstract:
A device determines a first voltage measurement of an output of a first brick. The device further determines a second voltage measurement associated with a second brick. The first brick is larger in size than the second brick. The device ramps up an output voltage of the second brick when the second voltage measurement is less than the first voltage measurement.
Abstract:
The disclosed current-distribution inductor may include (1) a magnetic core and (2) a conductor electrically coupled between a power source and an electrical component of a circuit board, wherein the conductor comprises (A) a bend that passes through the magnetic core and (B) a flying lead that extends from the bend to the electrical component of the circuit board and runs parallel with the circuit board. Various other apparatuses, systems, and methods are also disclosed.
Abstract:
The disclosed method may include (1) monitoring, while a computing device receives power from an external power supply, (A) the amount of power consumed by the computing device and (B) the amount of power provided to the computing device by the external power supply, (2) detecting that the amount of power provided to the computing device exceeds the amount of power consumed by the computing device by at least a certain threshold, (3) determining, based on the amount of power provided to the computing device exceeding the amount of power consumed by the computing device by the certain threshold, that the computing device is experiencing a malfunction, and then (4) mitigating potential damage to the computing device due to the malfunction by at least partially reducing the amount of power provided to the computing device from the external power supply. Various other apparatuses, systems, and methods are disclosed.
Abstract:
A disclosed apparatus may include (1) a voltage regulator module configured to convert electric power into at least one regulated voltage, (2) a controller configured to control passage of the electric power to the voltage regulator module, and (3) a computing device configured to (A) be powered by the regulated voltage and (B) provide a disable signal that causes the controller to suspend passage of the electric power to the voltage regulator module. Various other apparatuses, systems, and methods are also disclosed.
Abstract:
A device determines a first current, of a first input phase of a power system, and a second current, of a second input phase of the power system. The device determines whether the first input phase and the second input phase are balanced based on the first current and the second current. When the first input phase and the second input phase are not balanced, the device selects the first input phase and an output phase of the power system. The device balances the first input phase and the second input phase by using the first input phase and the output phase.
Abstract:
A disclosed apparatus may be a circuit board that includes (1) a first unique sublaminate that includes a plurality of ground layers and a plurality of signal layers, (2) a second unique sublaminate that includes a plurality of power layers and another plurality of signal layers, and (3) a symmetry axis that bisects the circuit board between the first unique sublaminate and the second unique sublaminate, wherein the first unique sublaminate and the second unique sublaminate are distinct from one another. Various other apparatuses, systems, and methods are also disclosed.
Abstract:
A disclosed apparatus may be a circuit board that includes (1) a first unique sublaminate that includes a plurality of ground layers and a plurality of signal layers, (2) a second unique sublaminate that includes a plurality of power layers and another plurality of signal layers, and (3) a symmetry axis that bisects the circuit board between the first unique sublaminate and the second unique sublaminate, wherein the first unique sublaminate and the second unique sublaminate are distinct from one another. Various other apparatuses, systems, and methods are also disclosed.
Abstract:
A device determines a first voltage measurement of an output of a first brick. The device further determines a second voltage measurement associated with a second brick. The first brick is larger in size than the second brick. The device ramps up an output voltage of the second brick when the second voltage measurement is less than the first voltage measurement.
Abstract:
A device may select a power supply module (PSM), from a plurality of PSMs that operate in a current sharing mode, for performing a health check. The device may perform the health check on the selected PSM by iteratively modifying an output voltage of the selected PSM and monitoring for a corresponding modification in an output current of the selected PSM. The device may determine whether the selected PSM is capable of delivering a particular load without a failure based on performing the health check. The device may perform an action based on whether the selected PSM is capable of delivering the particular load without the failure.