SOFT ELECTROHYDRODYNAMIC ACTUATOR
20220088773 · 2022-03-24
Assignee
Inventors
Cpc classification
F15B21/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B15/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F15B2015/208
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F04B43/09
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A soft electrohydrodynamic actuator includes an actuating unit. The actuating unit includes a flexible pouch, a rod electrode, a dielectric fluid, an enameled wire, a hose and a planar flexible electrode. The inner cavity of the flexible pouch is provided with the rod electrode and filled with the dielectric fluid. The hose is hermetically connected to a side of the flexible pouch. The enameled wire is hermetically sleeved in the hose. One end of the enameled wire extends into the inner cavity of the flexible pouch through the hose and is electrically connected to an end of the rod electrode. The other end of the enameled wire is connected to a high-voltage positive electrode. The outer surface of the flexible pouch is coated with a layer of conductive soft material as the planar flexible electrode, or a water environment around the flexible pouch is used as the planar flexible electrode.
Claims
1. A soft electrohydrodynamic actuator, comprising: at least one actuating unit; wherein each actuating unit of the at least one actuating unit comprises a flexible pouch, a rod electrode, a dielectric fluid, an enameled wire, a hose and a planar flexible electrode; the flexible pouch is a deformed body of the soft electrodyrodynamic actuator, and an inner cavity of the flexible pouch is configured as a closed electrode region; the inner cavity of the flexible pouch is provided with the rod electrode and the inner cavity of the flexible pouch is filled with the dielectric fluid; the hose is hermetically connected to a side of the flexible pouch, and the enameled wire is hermetically sleeved in the hose; a first end of the enameled wire extends into the inner cavity of the flexible pouch through the hose and then the first end of the enameled wire is electrically connected to an end of the rod electrode, and a second end of the enameled wire is connected to a high-voltage positive electrode; when the soft electrohydrodynamic actuator is used in air, an outer surface of the flexible pouch is coated with a layer of a conductive soft material as the planar flexible electrode, and the planar flexible electrode is connected to a grounding electrode; and when the soft electrohydrodynamic actuator is used in water, the flexible pouch is placed in the water, and a water environment around the flexible pouch is used as the planar flexible electrode without the conductive soft material.
2. The soft electrohydrodynamic actuator according to claim 1, wherein the rod electrode in the inner cavity of the flexible pouch and the planar flexible electrode outside the flexible pouch constitute two poles of the closed electrode region; and the high-voltage positive electrode is applied to the rod electrode through the enameled wire to actuate the dielectric fluid to flow in the closed electrode region to drive the flexible pouch to deform to implement an actuation.
3. The soft electrohydrodynamic actuator according to claim 1, wherein the flexible pouch is formed by hermetically connecting edges of two membrane materials; when the two membrane materials are the same in a material, a shape and a size, the two membrane materials form film materials with the same ductility, and the soft electrohydrodynamic actuator produces a stretching motion; and when the two membrane materials are different in at least one of the material, the shape and the size, the two membrane materials form film materials with different ductility, and the soft electrohydrodynamic actuator produces a bending motion.
4. The soft electrohydrodynamic actuator according to claim 1, wherein a gap is reserved at an edge joint between the two membrane materials, the dielectric fluid is injected through the gap by using a syringe, and then the gap is sealed to finally form the flexible pouch.
5. The soft electrohydrodynamic actuator according to claim 1, comprising: a plurality of actuating units connected in series.
6. The soft electrohydrodynamic actuator according to claim 1, comprising: a plurality of actuating units connected in parallel.
7. The soft electrohydrodynamic actuator according to claim 1, wherein the flexible pouch is made of a flexible membrane material.
8. The soft electrohydrodynamic actuator according to claim 1, wherein the rod electrode is made of a conductive material.
9. The soft electrohydrodynamic actuator according to claim 1, wherein the dielectric fluid is a fluid configured to produce an electrohydrodynamic effect.
10. The soft electrohydrodynamic actuator according to claim 1, wherein the planar flexible electrode is a spreadable conductive stretchable material.
11. The soft electrohydrodynamic actuator according to claim 2, wherein the flexible pouch is made of a flexible membrane material.
12. The soft electrohydrodynamic actuator according to claim 3, wherein the flexible pouch is made of a flexible membrane material.
13. The soft electrohydrodynamic actuator according to claim 4, wherein the flexible pouch is made of a flexible membrane material.
14. The soft electrohydrodynamic actuator according to claim 5, wherein the flexible pouch is made of a flexible membrane material.
15. The soft electrohydrodynamic actuator according to claim 6, wherein the flexible pouch is made of a flexible membrane material.
16. The soft electrohydrodynamic actuator according to claim 2, wherein the rod electrode is made of a conductive material.
17. The soft electrohydrodynamic: actuator according to claim 3, wherein the rod electrode is made of a conductive material.
18. The soft electrohydrodynamic actuator according to claim 4, wherein the rod electrode is made of a conductive material.
19. The soft electrohydrodynamic actuator according to claim 5, wherein the rod electrode is made of a conductive material.
20. The soft electrohydrodynamic actuator according to claim 6, wherein the rod electrode is made of a conductive material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0037] The present invention is further described in detail below with reference to the drawings.
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[0050] In the figures, (1): flexible pouch; (2): rod electrode; (3): dielectric fluid; (4): enameled wire; (5): hose; (7): planar flexible electrode; (101) and (102): membrane material.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0051] In order to illustrate the technical solutions and technical objectives of the present invention, the present invention is further introduced below with reference to the drawings and specific embodiments.
[0052] As shown in
[0053] As shown in
[0054] As shown in
[0055] In this way, the soft electrohydrodynamic actuator of the present invention has strong adaptability and can be used in water and air. In a specific implementation, the planar flexible electrode 7 is determined according to the actual situation.
[0056] The rod electrode 2 in the inner cavity of the flexible pouch 1 and the planar flexible electrode 7 outside the flexible pouch 1 constitute two poles of a closed electrode region. The high-voltage positive electrode is applied to the rod electrode 2 through the enameled wire 4 to actuate the dielectric fluid 3 to flow in the closed electrode region to drive the flexible pouch 1 to deform to implement actuation, which solves the problem of extremely limited flow of traditional electrohydrodynamic pumps.
[0057] As shown in
[0058] As shown in
[0059] As shown in
[0060] As shown in
[0061] A heavy object is connected to the bottom of the flexible pouch 1, and the heavy object may be the weight 6. As shown in
[0062] Referring to
[0063] Referring to
[0064] Referring to
[0065] Although the present invention has been disclosed above through the preferred embodiments, the embodiments are not intended to limit the present invention. Those of ordinary skill in the art can make various changes and modifications without departing from the spirit and scope of the present invention. Therefore, the scope of protection of the present invention shall be subject to the scope as defined in the claims.