H03K4/94

Oscillator circuit

An oscillator circuit includes a first integrator unit to charge a first capacitor at a first integration node, a second integrator unit to charge a second capacitor at a second integration node, a chopped comparator unit and a logic unit. The chopped comparator unit includes a switching unit, a sensing comparator and a replica comparator. The switching unit is configured to couple the first integration node, the second integration node and a reference voltage VREF to the sensing comparator and the replica comparator, depending upon a phase determined by a first input clock signal C1 and a second input clock signal C2, which have opposite phases. The logic unit is configured to generate signals C1, C2, D1, D2, E1, E2 for controlling each integrator unit.

OPTICAL TIME SYNCHRONIZATION
20250015807 · 2025-01-09 ·

A system and method for synchronizing clocks. The system may include a master device having a reference clock and slave devices whose clocks may be synchronized with the reference clock. The master device may drive a light transmitter (e.g., LED) to produce a light pulse with each clock cycle of the reference clock. The light pluses may be distributed by a transmissive medium, such as a low cost optical fiber.

OPTICAL TIME SYNCHRONIZATION
20250015807 · 2025-01-09 ·

A system and method for synchronizing clocks. The system may include a master device having a reference clock and slave devices whose clocks may be synchronized with the reference clock. The master device may drive a light transmitter (e.g., LED) to produce a light pulse with each clock cycle of the reference clock. The light pluses may be distributed by a transmissive medium, such as a low cost optical fiber.

SIGNAL CALCULATOR

Examples of a signal calculator include a voltage multiplier and a time divider. The voltage multiplier copies time information corresponding to a first voltage and generates a third voltage using a second current corresponding to a second voltage during a first period corresponding to the copied time information. The time divider generates an output according to a result of comparing a voltage generated by a first current on the basis of a voltage corresponding to a first time with a second voltage corresponding to a second time.

AMPLIFIER CIRCUIT AND ULTRASONIC PROBE

Amplification of a signal by a small circuit size and reduction of a power are achieved.

A current controlling current source unit 53 changes an outputting current based on a transition time setting signal tp. A current controlling current source unit 54 changes a drawing current based on a transition time setting signal tn. An amplitude control unit 55 changes a power source voltage supplied to the current controlling current source unit 53 and changes amplitude of a voltage generated by a current outputted from the current controlling current source unit 53, based on amplitude setting signal ap. An amplitude control unit 56 changes a power source voltage supplied to the current controlling current source unit 54 and changes amplitude of a voltage generated by the current drawn by the current controlling current source unit 54, based on amplitude setting signal an. The buffer unit 57 drives a load in accordance with the current outputted from the current controlling current source unit 53 and the current drawn from the current controlling current source unit 54.

Efficient high voltage square wave generator
09608613 · 2017-03-28 · ·

This disclosure generally provides a system, active input device, and method for generating an amplified square wave signal based on an input signal. The method comprises generating a pulse signal based on the input signal, and driving a switching signal based on the pulse signal to control a first switch. A pulse width of the pulse signal is adaptively controlled using a control signal generated based on the amplified square wave signal. An output terminal of the first switch is coupled with a second switch, and the switching signal controls current entering into the second switch. The method further comprises driving the input signal to control a third switch coupled with the second switch. The amplified square wave signal is generated at the second output terminal based on the switching signal and on the input signal.

Thermal-Type Flow Meter

A thermal-type flow meter for representing a flow rate of air by the frequency of a periodic signal, wherein abnormalities in the waveform of an output signal due to frequency variation is prevented while high-frequency noise is suppressed. The thermal-type flow meter pertaining to the present invention is provided with a plurality of switching elements connected in parallel, and varies a delay width between the switching elements in accordance with variation of the frequency of a periodic signal for representing a flow rate.

Linear transformer driver for pulse generation with fifth harmonic

A linear transformer driver includes at least one ferrite ring positioned to accept a load. The linear transformer driver also includes a first, second, and third power delivery module. The first power delivery module sends a first energy in the form of a first pulse to the load. The second power delivery module sends a second energy in the form of a second pulse to the load. The third power delivery module sends a third energy in the form of a third pulse to the load. The linear transformer driver is configured to form a flat-top pulse by the superposition of the first, second, and third pulses. The first, second, and third pulses have different frequencies.

Linear transformer driver for pulse generation with fifth harmonic

A linear transformer driver includes at least one ferrite ring positioned to accept a load. The linear transformer driver also includes a first, second, and third power delivery module. The first power delivery module sends a first energy in the form of a first pulse to the load. The second power delivery module sends a second energy in the form of a second pulse to the load. The third power delivery module sends a third energy in the form of a third pulse to the load. The linear transformer driver is configured to form a flat-top pulse by the superposition of the first, second, and third pulses. The first, second, and third pulses have different frequencies.

EFFICIENT HIGH VOLTAGE SQUARE WAVE GENERATOR
20170005646 · 2017-01-05 · ·

This disclosure generally provides a system, active input device, and method for generating an amplified square wave signal based on an input signal. The method comprises generating a pulse signal based on the input signal, and driving a switching signal based on the pulse signal to control a first switch. A pulse width of the pulse signal is adaptively controlled using a control signal generated based on the amplified square wave signal. An output terminal of the first switch is coupled with a second switch, and the switching signal controls current entering into the second switch. The method further comprises driving the input signal to control a third switch coupled with the second switch. The amplified square wave signal is generated at the second output terminal based on the switching signal and on the input signal.