CN214315090U - Double-layer ring piezoelectric rotary driver - Google Patents

Double-layer ring piezoelectric rotary driver Download PDF

Info

Publication number
CN214315090U
CN214315090U CN202120643580.1U CN202120643580U CN214315090U CN 214315090 U CN214315090 U CN 214315090U CN 202120643580 U CN202120643580 U CN 202120643580U CN 214315090 U CN214315090 U CN 214315090U
Authority
CN
China
Prior art keywords
inner ring
ring
flexible hinge
rotor
rotation
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CN202120643580.1U
Other languages
Chinese (zh)
Inventor
张博闻
董景石
徐智
刘畅
曹义
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Jilin University
Original Assignee
Jilin University
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Jilin University filed Critical Jilin University
Priority to CN202120643580.1U priority Critical patent/CN214315090U/en
Application granted granted Critical
Publication of CN214315090U publication Critical patent/CN214315090U/en
Expired - Fee Related legal-status Critical Current
Anticipated expiration legal-status Critical

Links

Images

Landscapes

  • General Electrical Machinery Utilizing Piezoelectricity, Electrostriction Or Magnetostriction (AREA)

Abstract

The utility model relates to a double-deck ring piezoelectricity rotary actuator. Comprises a base, a rotating ring, a piezoelectric element, a flexible hinge and a rotor. The piezoelectric element converts electric energy into mechanical energy through the inverse piezoelectric effect of the piezoelectric material, and drives the inner ring to rotate by utilizing the inertia principle. The flexible hinge is connected with the inner ring and the outer ring, and the outer ring can generate time delay rotation in the same direction after the inner ring rotates by utilizing the time delay effect of the flexible hinge, so that the whole mechanism can generate twice rotation in the same direction. The rotor is used as an output terminal of the driving device and is installed above the inner ring through threads. The mechanism is integrally arranged above the base. The device has the characteristics of stable rotation, quick response, high rotating speed and the like. Has good application prospect in the fields of optical instruments, aerospace and micromanipulation.

Description

Double-layer ring piezoelectric rotary driver
Technical Field
The utility model relates to an accurate machinery, in particular to double-deck ring piezoelectricity rotary actuator. Can be used in the fields of optical instruments, aerospace, micromanipulation and the like.
Background
The piezoelectric driving technology is a precise driving technology for controlling mechanical deformation and further outputting force and displacement based on the inverse piezoelectric effect of a piezoelectric material, has the characteristics of simple structure, high precision, high resolution, electromagnetic interference resistance and the like, and is widely applied to the fields of microsurgery microscopes, semiconductor manufacturing, precise optical alignment and the like due to the characteristics of high corner precision and easiness in miniaturization of an inertia actuating mechanism. However, the inertial rotating drive has great energy loss in the moving process and low efficiency.
In summary, certain analysis and improvement needs to be performed on the inertial rotation driver to reuse the performance.
Disclosure of Invention
The utility model provides a double-deck ring piezoelectricity rotary actuator solves some problems that the above-mentioned exists. The utility model utilizes the inertial motion principle of the inner ring to make the inner ring move in the process of changing the mode of the beam; and the movement is transmitted to the outer ring through the flexible hinge connected with the inner ring, and the inner ring which generates the rotary movement is driven to rotate again by utilizing the time delay effect of the flexible hinge and the inertia principle of the outer ring, so that the rotor on the inner ring is further driven to rotate. The utility model provides a double-deck ring piezoelectricity rotary actuator is based on inertia drive principle and flexible hinge's time lag principle, and the excitation signal produces twice asynchronous rotary motion once, has improved actuating mechanism's efficiency, has characteristics such as small, with low costs, control is simple, the corner precision is high, efficiency is optimized.
The above object of the utility model is realized through following technical scheme:
a double-layer ring piezoelectric rotary driver realizes secondary inertial rotary motion through a double-layer ring structure, and improves the rotation efficiency; the method comprises the following steps: the piezoelectric device comprises a base 1, an inner ring 2, an outer ring 3, a piezoelectric element 4, a flexible hinge 5 and a rotor 6; the inner ring 2 is provided with three mounting positions for mounting a piezoelectric element 4, a flexible hinge 5 and a rotor 6, and the bottom of the inner ring 2 is mounted on a base shaft of the base 1 to ensure that a driving mechanism can rotate; under the action of an electric signal in the working process, the piezoelectric element 4 drives the inner ring 2 and the outer ring 3 to generate inertial motion, so that the rotor 6 is driven to rotate.
The piezoelectric elements 4 are fixed on two sides of the beam of the inner ring 2, and are excited by an electric signal to generate modal change in the working process, so that the beam of the inner ring 2 generates slow bending deformation, and the outer edge of the inner ring 2 is driven to generate slow rotary motion; when the electric signal excitation mode changes suddenly, the outer edge of the inner ring 2 still keeps the original direction rotation due to the inertia of the inner ring, so that the inner ring rotates around the base shaft integrally.
The flexible hinge 5 is fixed on the outer edge of the inner ring 2, and the other end of the flexible hinge is connected with the outer ring 3. By utilizing the time lag effect of the flexible hinge, after the inner ring 2 rotates, the flexible hinge 5 enables the outer ring 3 to generate asynchronous delayed rotation, and after the outer ring 3 reaches the synchronous position with the inner ring 2, the outer ring continues to rotate along the original direction due to the inertia effect of the outer ring, so that the driving device generates twice rotation.
The rotor 6 is installed above the inner ring 2 through threads, after the piezoelectric element 4 is excited by inputting an electric signal which slowly rises and quickly falls, the inner ring 2 rotates due to the inertia of the inner ring, and meanwhile, the outer ring 3 generates delayed rotation which is asynchronous with the inner ring 2 by utilizing the time lag effect of the flexible hinge. The outer ring 3 drives the whole mechanism to rotate again due to the self inertia effect to generate a secondary rotation effect, and the rotor 6 rotates continuously around the base shaft of the base 1 in the same direction by adjusting the excitation of the input electric signal.
The beneficial effects of the utility model reside in that: the double-layer ring type rotating mechanism is provided, so that the efficiency of converting electric energy into mechanical energy is improved, and the double-layer ring type rotating mechanism has the characteristics of simple structure, high corner precision and the like, and has good application prospects in micromanipulation, optical instruments, medical equipment and the like.
Drawings
The accompanying drawings, which are included to provide a further understanding of the invention and are incorporated in and constitute a part of this application, illustrate example embodiments of the invention and together with the description serve to explain the invention without limitation.
FIG. 1 is a schematic view of the overall structure of the present invention
FIG. 2 is a schematic diagram of the structure of the double-layer ring of the present invention
FIG. 3 is a schematic view of the piezoelectric ceramic patch of the present invention
FIG. 4 is a schematic diagram of the movement of the present invention
FIG. 5 is a driving signal diagram of the present invention
In the figure: 1. a base; 2. an inner ring; 3. an outer ring; 4. a piezoelectric element; 5. a flexible hinge; 6. a rotor; 41. a left piezoelectric wafer; 42. and a right piezoelectric wafer.
Detailed Description
The detailed contents and the specific embodiments of the present invention are further described below with reference to the accompanying drawings.
Referring to fig. 1, 2 and 4, the double-layer ring piezoelectric rotary actuator of the present invention realizes the secondary inertial rotation motion by the double-layer ring structure, thereby improving the rotation efficiency; the method comprises the following steps: base, inlayer ring, outer ring, piezoelectric element, flexible hinge, rotor.
The inner ring 2 is provided with three mounting positions for mounting a piezoelectric element 4, a flexible hinge 5 and a rotor 6, and the bottom of the inner ring 2 is mounted on a base shaft of the base 1 to ensure that a driving mechanism can rotate; under the action of an electric signal in the working process, the piezoelectric element 4 drives the inner ring 2 and the outer ring 3 to generate inertial motion, so that the rotor 6 is driven to rotate.
The piezoelectric elements 4 are fixed on two sides of the beam of the inner ring 2, and are excited by an electric signal to generate modal change in the working process, so that the beam of the inner ring 2 generates slow bending deformation, and the outer edge of the inner ring 2 is driven to generate slow rotary motion; when the electric signal excitation mode changes suddenly, the outer edge of the inner ring 2 still keeps the original direction rotation due to the inertia of the inner ring, so that the inner ring rotates around the base shaft integrally.
The flexible hinge 5 is fixed on the outer edge of the inner ring 2, and the other end of the flexible hinge is connected with the outer ring 3. By utilizing the time lag effect of the flexible hinge, after the inner ring 2 rotates, the flexible hinge 5 enables the outer ring 3 to generate asynchronous delayed rotation, and after the outer ring 3 reaches the synchronous position with the inner ring 2, the outer ring continues to rotate along the original direction due to the inertia effect of the outer ring, so that the driving device generates twice rotation.
The rotor 6 is installed above the inner ring 2 by threads, after the piezoelectric element 4 is excited by inputting an electric signal which slowly rises and quickly falls, the inner ring 2 rotates due to the inertia of the inner ring, and meanwhile, the outer ring 3 generates delayed rotation which is asynchronous with the inner ring 2 by utilizing the time lag effect of the flexible hinge; the outer ring 3 drives the whole mechanism to rotate again due to the self inertia effect to generate a secondary rotation effect, and the rotor 6 rotates continuously around the base shaft of the base 1 in the same direction by adjusting the excitation of the input electric signal.
Referring to fig. 2 and 3, the inner ring 2 can be matched with the base shaft of the base 1, the piezoelectric element 4 is fixed on the transverse shaft of the inner ring 2, and the left piezoelectric wafer 41 and the right piezoelectric wafer 42 are respectively excited by inputting opposite electric signals, so that the transverse beam can generate the same-direction rotation effect on the inner ring.
Referring to fig. 2 and 3, the double-layer ring is divided into three parts by the flexible hinge 5, and the three parts are uniformly distributed to play a role in stabilizing and fixing the outer-layer ring 3 and reduce the vibration in the rotating process.
Referring to fig. 2 and 3, the inner ring 2 has four threaded holes for fixing the rotor 6 thereon, so that the rotor 6 and the inner ring 2 rotate synchronously.
Referring to fig. 5, the electrical signals in the periodic slow-rising phase and the rapid-falling phase are sawtooth voltage signals.
The above description is only a preferred example of the present invention and is not intended to limit the present invention, and various modifications and changes may be made by those skilled in the art. Any modification, equivalent replacement, improvement and the like made to the present invention should be included in the protection scope of the present invention.

Claims (1)

1. A double-ring piezoelectric rotary actuator, comprising: the secondary inertial rotation motion is realized through the double-layer ring structure, so that the rotation efficiency is improved; comprises a base (1), an inner ring (2), an outer ring (3), a piezoelectric element (4), a flexible hinge (5) and a rotor (6); the inner ring (2) is provided with three mounting positions for mounting the piezoelectric element (4), the flexible hinge (5) and the rotor (6), and the bottom of the inner ring (2) is mounted on a base shaft of the base (1) to ensure that the driving mechanism can rotate; under the action of an electric signal in the working process, the piezoelectric element (4) drives the inner layer ring (2) and the outer layer ring (3) to generate inertial motion, so that the rotor (6) is driven to rotate;
the piezoelectric elements (4) are fixed on two sides of the beam of the inner ring (2), and are excited by an electric signal to generate modal change in the working process, so that the beam of the inner ring (2) generates slow bending deformation, and the outer edge of the inner ring (2) is driven to generate slow rotary motion; when the electric signal excitation mode changes suddenly, the outer edge of the inner ring (2) still keeps the original direction rotation due to the inertia of the inner ring, so that the inner ring rotates around the base shaft integrally;
the flexible hinge (5) is fixed at the outer edge of the inner ring (2), the other end of the flexible hinge is connected with the outer ring (3), the flexible hinge (5) enables the outer ring (3) to generate asynchronous delay rotation after the inner ring (2) rotates by utilizing the time lag effect of the flexible hinge, and the outer ring (3) continues to rotate in the original direction due to the inertia effect of the outer ring after reaching the synchronous position with the inner ring (2), so that the driving device generates two rotations;
the rotor (6) is installed above the inner ring (2) through threads, after the piezoelectric element (4) is excited by inputting an electric signal which rises slowly and falls quickly, the inner ring (2) rotates due to the inertia of the inner ring, and meanwhile, the outer ring (3) generates delayed rotation which is asynchronous with the inner ring (2) by utilizing the time delay effect of the flexible hinge; the outer ring (3) drives the whole mechanism to rotate again due to the self inertia effect to generate a secondary rotation effect, and the rotor (6) rotates continuously around the base shaft of the base (1) in the same direction by adjusting the excitation of the input electric signal.
CN202120643580.1U 2021-03-30 2021-03-30 Double-layer ring piezoelectric rotary driver Expired - Fee Related CN214315090U (en)

Priority Applications (1)

Application Number Priority Date Filing Date Title
CN202120643580.1U CN214315090U (en) 2021-03-30 2021-03-30 Double-layer ring piezoelectric rotary driver

Applications Claiming Priority (1)

Application Number Priority Date Filing Date Title
CN202120643580.1U CN214315090U (en) 2021-03-30 2021-03-30 Double-layer ring piezoelectric rotary driver

Publications (1)

Publication Number Publication Date
CN214315090U true CN214315090U (en) 2021-09-28

Family

ID=77837545

Family Applications (1)

Application Number Title Priority Date Filing Date
CN202120643580.1U Expired - Fee Related CN214315090U (en) 2021-03-30 2021-03-30 Double-layer ring piezoelectric rotary driver

Country Status (1)

Country Link
CN (1) CN214315090U (en)

Similar Documents

Publication Publication Date Title
CN109980990B (en) Piezoelectric-electromagnetic hybrid drive type multi-degree-of-freedom precision positioning device and control method
CN110460264B (en) Piezoelectric driver for improving performance based on four-foot coupling motion mode and control method
CN107462963B (en) Piezo-electric driven variable diaphragm dimming device and method
CN107994806B (en) Precision piezoelectric stick-slip turntable and its driving method
CN103916045B (en) Stepping type rotation driving device and method on basis of piezoelectric ceramics
CN112803829B (en) Friction asymmetric inertia piezoelectric linear driving device and method
JP2011163521A (en) Rotary drive unit
CN207232479U (en) A kind of iris diaphgram light modulating device of Piezoelectric Driving
Ding et al. An inertial piezoelectric rotary actuator characterized by the motion without rollback
CN210431263U (en) Novel piezoelectric rotation precision driving platform
CN113224972A (en) Single-stator three-degree-of-freedom spherical ultrasonic motor and excitation method thereof
CN214315090U (en) Double-layer ring piezoelectric rotary driver
CN112886861B (en) Double-layer ring piezoelectric rotary driver
CN112865597A (en) Time-lag effect inertial piezoelectric driver based on flexible hinge
Spanner et al. Design of linear ultrasonic micro piezo motor for precision mechatronic systems
CN110855181A (en) Rotation type piezoelectric drive device based on asymmetric triangle the hinge mechanism
CN112910310A (en) Inertial impact type piezoelectric driver capable of carrying large load and driving method thereof
CN110995058A (en) Novel piezoelectric rotation precision driving platform based on parasitic inertia principle
CN214626828U (en) Time-lag effect inertial piezoelectric driver based on flexible hinge
CN102097974B (en) Travelling-wave linear ultrasonic micromotor
CN206115005U (en) Large -scale astronomical telescope panel actuator
CN214315088U (en) Large-stroke piezoelectric inertia driving platform
CN113078845B (en) Piezoelectric rotary positioning platform of asymmetric flexible hinge and driving method thereof
CN109951102B (en) Two-degree-of-freedom ultra-precise piezoelectric driving platform and excitation method thereof
CN210225279U (en) Piezoelectric driver for improving performance based on four-foot coupling motion mode

Legal Events

Date Code Title Description
GR01 Patent grant
GR01 Patent grant
CF01 Termination of patent right due to non-payment of annual fee

Granted publication date: 20210928

CF01 Termination of patent right due to non-payment of annual fee