H02N2/025

System and method to control slip-stick stages

A system to control slip-stick stages that includes a slip-stick stage including an actuator and a processor coupled to the actuator to obtain a frequency, a number of measurement samples, and a voltage; determine a time period based on the number of measurement samples and the frequency; sample a displacement of the actuator during the time period. The system functions to calculate an error value based on the displacement and a reference position; determine a step value based on the error value and a modulation protocol. The modulation protocol includes a proportional modulation protocol or a proportional-integral modulation protocol to generate a control signal based on the step value, the frequency and the voltage based on an integral of a function of voltage and a Heaviside function according to a direction specified by a sign of the step value; and transmit the control signal to the actuator.

Drive device and method for linear or rotary positioning

The disclosure relates to a drive means for non-resonant linear and/or rotary positioning of an object, comprising at least two piezoelectric or electrostrictive actuator groups, where-in a first actuator group moves a first runner portion relative to a stationary base of the drive means according to the principle of an inertia drive, and by means of the second actuator group a second runner portion is moved relative to the first runner portion with a limited range of movement in the high-resolution scan mode, wherein a common electrical control signal is applied to the first and second actuator groups.

Piezo-electric motor with piezo stack and spring strap

A piezo-electric motor 100 includes an actuation portion including an actuation surface 106 and a piezo stack 102 that is operable in response to the application of a voltage to move the actuation surface along an actuation axis 116 between a retracted position and an extended position. A spring strap 112 partially surrounds the actuation portion and is operable to bias the actuation surface toward the retracted position and a movable portion 108,110 is frictionally engaged with the actuation surface. The voltage is selected such that the movable portion sticks to the actuation surface as the actuation surface moves toward one of the retracted position and the extended position and slips on the actuation surface as the actuation surface moves toward the other of the retracted position and the extended position.

LINEAR PIEZOELECTRIC MOTOR CAPABLE OF UNDERWATER DRIVING AND METHOD OF MANUFACTURING SAME
20210313508 · 2021-10-07 ·

Disclosed is a linear piezoelectric motor having a waterproof function. A coupler is provided inside a housing, and a moving shaft is fixed to a piezoelectric actuator by the coupler. A fastening unit is provided on a side surface of the moving shaft passing through the housing and in a concave recessed part of the housing. The fastening unit is provided with an elastic tube and a tension spring, and the moving shaft inserted into the elastic tube is inserted into an insertion hole of the housing.

Piezoelectric drive with at least two independent drive sections

A piezoelectric stepper drive includes a piezoelectric drive apparatus with at least two drive sections, each acted upon by at least two piezoelectric actuators, and a driven member which is advanced by at least one of the drive sections when control voltages are applied to the actuators. The drive apparatus is configured approximately in the shape of a triangle, at the tip of which the drive sections are arranged. At least one of the drive sections is biased against the driven member, in the absence of control voltages applied to the actuators, such that the drive section blocks advance of the driven member, where each of the drive sections is mounted individually resilient relative to a base of the triangle.

Optical driving mechanism

An optical driving mechanism is provided, configured to force an optical element, including a base, a movable portion, and a driving portion. The movable portion is disposed and connected to the base. The movable portion includes a holder configured to sustain the optical element, a magnetic element, and a fixing member. The magnetic element and the fixing member are affixed to the holder, wherein the fixing member has a permeable material. The driving portion is configured to force the movable portion to move relative to the base, wherein the driving portion includes a piezoelectric element and a support member connecting thereto. The piezoelectric element and the support member are disposed on the base and connected to the movable portion. The fixing member makes contact with the support member via a magnetic attraction force between the magnetic element and the fixing member.

Inertial piezoelectric actuator driven by symmetrical sawtooth wave and method for achieving bi-directional motion thereof
11075593 · 2021-07-27 · ·

An inertial piezoelectric actuator driven by symmetrical sawtooth wave is symmetrical in structure and includes a seat, a slider, a piezoelectric stack and an elliptical ring. A pair of leaf-shaped flexible beams are arranged at a front end of a base, and a guide rail is connected between the pair of leaf-shaped flexible beams. The slider is placed on the guide rail. The piezoelectric stack is arranged in the elliptical ring with an interference fit. A front end of the elliptical ring is in contact with the guide rail, and a pre-stressed contact force between the elliptical ring and the guide rail is controlled by adjusting a screw at a rear end of the elliptical ring. A method for method for actuating bi-directional motion of the inertial piezoelectric actuator is further provided.

SLIP-STICK STAGE CONTOL

Methods, systems, and computer readable media for control of slip-stick stages using P and PI sawtooth modulated inputs.

Method for operating an electromechanical element, actuator, drive device and motor

A method for operating an electromechanical element, comprising the following steps: by controlling a first control section which is deformable by an electrical voltage by a first voltage signal generation of adjusting movements of a friction element which is arranged on the electromechanical element and which is provided for frictional contact with an element to be driven, controlling of a second control section which is deformable by an electrical voltage by a second voltage signal, which comprises a signal section, the frequency of which compared to the first voltage signal is by a factor, an actuator, a drive device with an actuator and a motor with a drive device and an element to be driven.

Optical element driving mechanism

An optical element driving mechanism is provided that includes a fixed assembly, a movable assembly, a driving assembly, and a circuit assembly. The movable assembly is configured to be connected to an optical element, and the movable assembly is movable relative to the fixed assembly. The driving assembly is configured to drive the movable member to move relative to the fixed assembly. The circuit assembly is electrically connected to the driving assembly, and the circuit assembly includes an electrical connection element having a resin material.