G05F1/10

Mechanical Energy Storage Unit-based Energy Platform
20230238901 · 2023-07-27 ·

A system may include a first node having a first mechanical energy storage unit (MESU) located in a first geographical location, the first node being coupled for communication with an energy as a service (EaaS) platform. A system may include a second node having a second MESU located in a second geographical location that is distinct from the first geographical location, the second node being coupled for communication with the EaaS platform, wherein the first MESU of the first node and the second MESU of the second node are each configured to send a power banking status to the EaaS platform and to extract or bank power based on signals received from the EaaS platform.

Power conversion circuit with solid-state switches

A switched-mode power regulator circuit has four solid-state switches connected in series and a capacitor and an inductor that regulate power delivered to a load. The solid-state switches are operated such that a voltage at the load is regulated by repetitively (1) charging the capacitor causing a current to flow in the inductor and (2) discharging the capacitor causing current to flow in the inductor. The power regulator circuit may be configured to operate with zero current switching at frequencies in the range of 100 MHz, enabling it to be fabricated on a unitary silicon die along with the load that it powers.

Power conversion circuit with solid-state switches

A switched-mode power regulator circuit has four solid-state switches connected in series and a capacitor and an inductor that regulate power delivered to a load. The solid-state switches are operated such that a voltage at the load is regulated by repetitively (1) charging the capacitor causing a current to flow in the inductor and (2) discharging the capacitor causing current to flow in the inductor. The power regulator circuit may be configured to operate with zero current switching at frequencies in the range of 100 MHz, enabling it to be fabricated on a unitary silicon die along with the load that it powers.

POWER DETECTION CIRCUIT AND CONTROL CIRCUIT

A power detection circuit is provided for detecting current total input power of a resonant circuit. The power detection circuit includes a detection circuit and an estimation circuit. The detection circuit receives a current signal and obtains resonant-slot baseband power according to the current signal to generate the baseband power value. The current signal represents a resonant-slot current generated by the resonant circuit. The estimation circuit receives the baseband power value and estimates the current total input power according to the baseband power value to generate an estimated power value.

POWER DETECTION CIRCUIT AND CONTROL CIRCUIT

A power detection circuit is provided for detecting current total input power of a resonant circuit. The power detection circuit includes a detection circuit and an estimation circuit. The detection circuit receives a current signal and obtains resonant-slot baseband power according to the current signal to generate the baseband power value. The current signal represents a resonant-slot current generated by the resonant circuit. The estimation circuit receives the baseband power value and estimates the current total input power according to the baseband power value to generate an estimated power value.

BANDWIDTH-BASED PHASE CONTROL OF VOLTAGE REGULATOR
20220404883 · 2022-12-22 ·

Various embodiments provide apparatuses, systems, and methods for bandwidth-based control of phase count in a voltage regulator. The techniques described herein may be used with a voltage regulator that supply power to a data circuit that processes data traffic. The voltage regulator includes a plurality of phases to generate an output voltage that is provided to the data circuit. A control circuit determines a bandwidth of the data traffic that is handled by the data circuit and control a number of the phases that are active based on the determined bandwidth. Other embodiments may be described and claimed.

BANDWIDTH-BASED PHASE CONTROL OF VOLTAGE REGULATOR
20220404883 · 2022-12-22 ·

Various embodiments provide apparatuses, systems, and methods for bandwidth-based control of phase count in a voltage regulator. The techniques described herein may be used with a voltage regulator that supply power to a data circuit that processes data traffic. The voltage regulator includes a plurality of phases to generate an output voltage that is provided to the data circuit. A control circuit determines a bandwidth of the data traffic that is handled by the data circuit and control a number of the phases that are active based on the determined bandwidth. Other embodiments may be described and claimed.

Systems and methods for calibrating temperature sensors
11519795 · 2022-12-06 · ·

Embodiments of a device and method are disclosed. In an embodiment, a calibration circuit for a temperature sensor circuit includes a current source configured to generate a temperature independent reference current and further includes a voltage window generator circuit. The voltage window generator circuit is configured to generate a voltage window for the temperature sensor circuit using at least the temperature independent reference current. The voltage window is defined by a first reference voltage and a second reference voltage. The voltage window generator circuit is further configured to control a width of the voltage window to include a range of proportional to absolute temperature (PTAT) voltage outputs of a temperature sensor in the temperature sensor circuit.

Systems and methods for calibrating temperature sensors
11519795 · 2022-12-06 · ·

Embodiments of a device and method are disclosed. In an embodiment, a calibration circuit for a temperature sensor circuit includes a current source configured to generate a temperature independent reference current and further includes a voltage window generator circuit. The voltage window generator circuit is configured to generate a voltage window for the temperature sensor circuit using at least the temperature independent reference current. The voltage window is defined by a first reference voltage and a second reference voltage. The voltage window generator circuit is further configured to control a width of the voltage window to include a range of proportional to absolute temperature (PTAT) voltage outputs of a temperature sensor in the temperature sensor circuit.

Reset and safe state logic generation in dual power flow devices

An electric device includes: a first power domain; a second power domain; a third power domain, where during power-up, the third, the second, and the first power domains are configured to be powered up sequentially, where during standby-exit, the first, the second, and the third power domains are configured to be powered up sequentially; isolation paths that provide controlled signal transmission among the first, the second, and the third power domains, where each isolation path includes an isolation circuit between an input power domain and an output power domain of the isolation path; and a control circuit in the first power domain, where for each isolation path, the control circuit is configured to generate an isolation control signal for the isolation circuit, where the isolation circuit is configured enable or disable signal transmission along the isolation path.