Patent classifications
H02N2/0075
Energy Harvesting Wireless Sensing Systems
The disclosure generally relates to wireless sensing nodes, energy harvesting, and energy charging. The disclosure also generally relates to reporting data gathered by the wireless sensing nodes to one or more network services.
LUMINAIRE, LIGHTING SYSTEM, AND SETTING METHOD IN LIGHTING SYSTEM
A luminaire includes a body case and a lighting device mounted on the body case. The lighting device includes: a power generator which generates electric power upon being pressed when the lighting device having a light source is mounted onto the body case; a wireless module which performs wireless communication; and a controller connected to the power generator. When the lighting device is mounted onto the body case, the controller transmits identification information by which the lighting device is identified, via the wireless module using the electric power generated by the power generator.
VALVE CONTROL DEVICE, DRIVE CONTROL DEVICE, AND FLUID CONTROL DEVICE
To provide a valve control device, a drive control device, and a fluid control device, which are suitable for adjusting a valve. The valve control device comprises: a rod-shaped rotor provided so as to rotate about a rotation axis, wherein one end of the rotor is directly or indirectly connected to a valve body, at least a part of the valve body being positioned in a flow path for fluid, wherein the rotor changes a relative position between the valve body and a valve seat that is closed by the valve body or a contact force between the valve body and the valve seat; a pair of contacts for sandwiching the rotor and for rotating the rotor; a moving unit comprising a piezoelectric element for causing the pair of contacts to perform relative movement; and a drive control unit for controlling the relative position between the valve body and the valve seat or the contact force between the valve body and the valve seat by applying a voltage waveform having a rising slope and a falling slope different from the rising slope to the piezoelectric element so as to cause the pair of contacts to rotate the rotor in a desired direction, wherein a steeper slope of the rising slope and the falling slope causes a slip between the rotor and the pair of contacts.
Perturbation measurement, correction, and inducing system adapted to provide highly accurate perturbation measurements and reduce the effects of perturbations within the system
The present invention relates to a device which can measure, induce, and correct perturbations acting on an electromagnetic (EM) propagation source. Piezoelectric transducers are used to measure and control perturbations within a system to improve operation of an EM source. Perturbation measurements can be used to determine the environmental and system impacts on the EM source. Moreover, measurements can be used to correct or nullify perturbations applied to the EM source, through active or passive means.
Vibration wave motor, drive control system, optical apparatus, and electronic apparatus
A vibration wave motor includes a driven body, a vibrator including an annular vibration plate and an annular piezoelectric element, and a vibration damping member, which are arranged in sequence, wherein the vibration plate has, on a side facing the driven body, radially extending groove portions at X places, and, when center depths of the groove portions at X places are sequentially denoted by D1 to DX in a circumferential direction, D1 to DX vary along a curve obtained by superposing one or more sine waves, and wherein the vibration plate is locally supported by the vibration damping member in some or all antinode portions of a standing wave occurring when the vibration wave motor is driven.
DRIVER CIRCUITRY AND OPERATION
This application relates to methods and apparatus for driving a transducer with switching drivers where the switching driver has an output bridge stage for switching an output node between switching voltages and a modulator for controlling the duty cycle of the output bridge stage based on an input signal. The switching driver also includes a voltage controller for providing the switching voltages which is operable to provide different switching voltages in different driver modes. A controller is provided to control the driver mode of operation and the duty cycle of the switching driver based on the input signal, and the controller is configured to transition from a present driver mode to a new driver mode by controlling the voltage controller to provide the switching voltages for the new mode and controlling the modulator to vary the duty cycle of the output bridge stage. The change in duty cycle is controlled such that there is no substantial discontinuity in switching ripple due to the mode transition.
PIEZOELECTRIC ACTUATOR, PIEZOELECTRIC MOTOR, ROBOT, HAND, AND PUMP
A piezoelectric actuator includes a first piezoelectric element that outputs a first signal when being driven, a second piezoelectric element that outputs a second signal when being driven, a signal combining part that delays phase of the second signal and outputs a composite signal by combination of the second signal and the first signal, and a drive state determination part that determines respective drive states of the first piezoelectric element and the second piezoelectric element based on the composite signal.
CONTROL APPARATUS FOR VIBRATION TYPE MOTOR, AND DRIVING APPARATUS
A control apparatus for a vibration type motor includes a processor or circuit that serves as a driving signal generating unit configured to generate a driving signal of the vibration type motor; and a booster circuit configured to boost the driving signal. The driving signal generating unit changes a duty ratio of the driving signal based on a driving frequency of the vibration type motor or a current flowing through the vibration type motor.
Method and apparatus for producing optical tracking and nutation at high frequencies with low power
A reduced power consumption actuator drive circuit that includes separate circuit power paths for different portions of the signal spectrum for applications in which lower frequencies have high amplitudes. The low frequency circuit paths use higher power supply voltages at lower currents and the high frequency circuit paths use lower power supply voltages at higher currents. In one embodiment, the drive circuit drives a nutator that employs a resonating circuit that maintains actuator motion with reduced energy supplied by the power supply.
System and method for controlling an active material actuator
A system for controlling an active material actuator includes an active material actuator configured to actuate when energized, a power supply configured to supply electrical power, and a control circuitry including a plurality of circuits and configured to selectively establish an electrical connection between the active material actuator and the power supply upon receipt of an activation signal. The control circuitry is configured to de-energize at least one of the circuits when no activation signal is received by the control circuitry in order to minimize parasitic current drawn from the power supply.