LOAD GENERATING UNIT FOR TESTING ACTUATOR AND LOAD SIMULATOR FOR TESTING ACTUATOR
20220316982 · 2022-10-06
Inventors
- Seung-Chul HAN (Daejeon, KR)
- Ji-Suk KIM (Daejeon, KR)
- Ha-Jun LEE (Daejeon, KR)
- Dae-Gyeom KANG (Daejeon, KR)
Cpc classification
International classification
Abstract
The present invention provides a load generating unit for testing an actuator, the unit including a first permanent magnet and a second permanent magnet spaced apart from each other; a third permanent magnet or a ferromagnetic body arranged in a row with the first permanent magnet and the second permanent magnet between the first permanent magnet and the second permanent magnet; and a first link passing through central axes of the first permanent magnet and the second permanent magnet to be penetrated to a central axis of the third permanent magnet and be connected to the actuator, wherein the third permanent magnet and the link are displaced in a length direction of the first link by a magnetic force. According to the present invention, the complexity, cost, and inertia of a device may be overcome and a load profile may be easily generated.
Claims
1. A load generating unit for testing an actuator, comprising: a first permanent magnet and a second permanent magnet spaced apart from each other; a third permanent magnet arranged in a row with the first permanent magnet and the second permanent magnet between the first permanent magnet and the second permanent magnet; and a first link passing through central axes of the first permanent magnet and the second permanent magnet to be penetrated to a central axis of the third permanent magnet and be connected to the actuator, wherein the third permanent magnet and the link are displaced in a length direction of the first link by a magnetic force.
2. The load generating unit of claim 1, wherein the polarities of either surface of the third permanent magnet differ from the polarities of surfaces of the first and second permanent magnets respectively facing either surface of the third permanent magnet.
3. The load generating unit of claim 1, wherein the polarities of either surface of the third permanent magnet are the same as the polarities of surfaces of the first second permanent magnet respectively facing either surface of the third permanent magnet.
4. The load generating unit of claim 1, wherein the first permanent magnet, the second permanent magnet, and the third permanent magnet have a rectangular planar shape or a cylindrical shape.
5. A load generating unit for testing an actuator, comprising: a first permanent magnet and a second permanent magnet spaced apart from each other; a ferromagnetic body arranged in a row with the first permanent magnet and the second permanent magnet between the first permanent magnet and the second permanent magnet; and a first link passing through central axes of the first permanent magnet and the second permanent magnet to be penetrated to a central axis of the ferromagnetic body and be connected to the actuator, wherein the ferromagnetic body and the link are displaced in a length direction of the first link by a magnetic force.
6. The load generating unit of claim 5, wherein the polarities of the surfaces of the first and second permanent magnets respectively facing either surface of the ferromagnetic body differ from each other.
7. The load generating unit of claim 5, wherein the polarities of the surfaces of the first and second permanent magnets respectively facing either surface of the ferromagnetic body are the same.
8. The load generating unit of claim 5, wherein the first permanent magnet, the second magnet, and the ferromagnetic body have a rectangular planar shape or a cylindrical shape.
9. A load simulator for testing an actuator, comprising the load generating unit of claim 1; and the actuator directly connected to the first link.
10. The load simulator of claim 9, further comprising: a first bracket coupled to the other surface of the first permanent magnet; a second bracket coupled to the other surface of the second permanent magnet; and a permanent magnet displacement adjusting unit coupled to the first bracket to adjust a position of the first bracket.
11. The load simulator of claim 10, wherein the first bracket and the second bracket are ferromagnetic.
12. A load simulator for testing an actuator, comprising: the load generating unit of claim 1; a second link disposed parallel to the first link, one end of the second link being connected to the actuator; and a moment arm of which one end is rotatably coupled to the first link and the other end is rotatably coupled to the second link, wherein the moment arm rotates around a middle portion of the moment arm.
13. The load simulator of claim 12, further comprising: a fixed moment aim bracket; and a coupling pin passing through the moment aim bracket and a middle portion of the moment aim to be coupled thereto.
14. The load simulator of claim 13, further comprising: a first bracket coupled to the other surface of the first permanent magnet; a second bracket coupled to the other surface of the second permanent magnet; and a permanent magnet displacement adjusting unit coupled to the first bracket to adjust a position of the first bracket.
15. The load simulator of claim 14, wherein the first bracket and the second bracket are ferromagnetic.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0030]
[0031]
[0032]
DETAILED DESCRIPTION OF THE INVENTION
[0033] Reference is to be made to the accompanying drawings illustrating preferred embodiments of the present invention and the content described in the accompanying drawings in order to fully understand the present invention, operational advantages of the present invention, and the objects achieved by the embodiments of the present invention.
[0034] Already known techniques or repetitive descriptions that may unnecessarily obscure the gist of the present invention will be cut short or omitted.
[0035]
[0036] Hereinafter, a load generating unit for testing an actuator and a load simulator for testing the actuator according to embodiments of the present invention will be described with reference to
[0037] The present invention relates to a load generating unit for testing an actuator and a load simulator for testing the actuator configured to overcome the complexity, costliness, and inertia of the device and easily generate a load profile.
[0038] To this end, the present invention simulates a load using a magnetic force by arranging permanent magnets and a ferromagnetic body.
[0039] That is, a plurality of permanent magnets or a plurality of permanent magnets and a ferromagnetic body such as iron or nickel are arranged in series/in a row, and a load is simulated using a magnetic force interacting between the respective components.
[0040] The load generating unit of the present invention includes a pair of fixed permanent magnets and includes at least one permanent magnet or a ferromagnetic body disposed therebetween.
[0041]
[0042] The load generating unit according to a first embodiment in
[0043] The first permanent magnet 110, the second permanent magnet 120, and the third permanent magnet 130 have a rectangular planar shape or a cylindrical or hollow cylindrical shape magnetized in the axial direction.
[0044] Accordingly, the third permanent magnet 130 disposed between the fixed first permanent magnet 110 and the second permanent magnet 120 is displaced in the central axis direction by a magnetic force.
[0045] A link to be described below passes through, and is penetrated to, the first permanent magnet 110, the second permanent magnet 120, and the third permanent magnet 130, and the actuator is connected to the link so that the magnetic force by the magnets acts as a load on the actuator.
[0046] The polarities of the N and S poles of the first permanent magnet 110, the second permanent magnet 120, and the third permanent magnet 130 are arranged in the same direction as illustrated so that the third permanent magnet 130 is displaced by the act of an attractive force between the first permanent magnet 110 and the second permanent magnet 120.
[0047] According to a second embodiment in
[0048] On the other hand, in third and fourth embodiments in
[0049]
[0050]
[0051] The load simulator includes the load generating unit 11, a first link 12, a first bracket 13-1, a second bracket 13-2, and a permanent magnet displacement adjusting unit 14 and may further include a moment arm 15, a moment arm bracket 16, a coupling pin 16-1, and a second link 17.
[0052] A plurality of permanent magnets or a plurality of permanent magnets and a ferromagnetic body of the load generating unit according to the first to fourth embodiments described above are arranged in series/in a row in the load generating unit 11, and a first permanent magnet 110, a second permanent magnet 120, and a ferromagnetic body 210 according to a fifth embodiment are arranged in
[0053] Here, the first permanent magnet 110 and the second permanent magnet 120 may be axially magnetized ring magnets, and a disc-shaped ferromagnetic body 210 is arranged between the first permanent magnet 110 and the second permanent magnet 120.
[0054] The first link 12 passes through, and is coupled to, central axes of the first permanent magnet 110, the second permanent magnet 120, and the ferromagnetic body 210 of the load generating unit 11 to transfer the load to the actuator 20.
[0055] The first link 12, in a circular shape, passes through the central axes of the first permanent magnet 110 and the second permanent magnet 120 and may pass through the ferromagnetic body 210 as illustrated.
[0056] The first permanent magnet 110 and the second permanent magnet 120 are fixedly coupled to the first bracket 13-1 and the second bracket 13-2 respectively.
[0057] The fixed first permanent magnet 110, the second permanent magnet 120, and the first link 12 are preferably set such that friction therebetween is negligible.
[0058] The first bracket 13-1 and the second bracket 13-2 may be composed of a ferromagnetic body so that the permanent magnets are magnetically coupled thereto to do without fastening parts.
[0059] The first bracket 13-1 may be coupled to the permanent magnet displacement adjusting unit 14. That is, the first bracket 13-1 is displaced in the central axis direction as the permanent magnet displacement adjusting unit 14 that may be a hydraulic cylinder or a jackscrew, expands or relaxes so that the position of the first permanent magnet 110 may be finely adjusted in the central axis direction.
[0060] Accordingly, the load profile received from the load generating unit 11 may be adjusted.
[0061] In this way, the ferromagnetic body 210 disposed between the fixed first permanent magnet 110 and the second permanent magnet 120 is displaced in the axial direction parallel to the first link 12 by magnetic force and the first link 12 coupled to the ferromagnetic body 210 is displaced in the length direction so that the load is transferred to the actuator 20 by the generated displacement in the load simulator of the present invention.
[0062] On the other hand, the moment arm 15 and the second link 17 may be further included for adjusting a relationship between the displacement of the actuator 20 and load, the actuator 20 may be coupled to one end of the second link 17, and the actuator 20 may be directly connected to the first link 12 as needed.
[0063] One end of the moment arm 15 is rotatably coupled to the first link 12 and the other end is rotatably coupled to the second link 17.
[0064] The moment arm bracket 16 is included for fixing the moment arm 15, and the coupling pin 16-1 passes through, and is coupled to, the moment arm bracket 16 and an arbitrary middle portion of the moment arm 15.
[0065] Accordingly, when the first link 12 is displaced in the length direction, the moment arm 15 is rotated around the coupling pin 16-1 so that the second link 17 is displaced in the length direction.
[0066] The second link 17 may be parallel to the first link 12 and is adjusted by the moment arm 15 to be displaced in a greater magnitude so that a load of a greater magnitude is transferred to the actuator 20 coupled to one end of the second link 17.
[0067] An analysis of the load simulated by the load generating unit 11 is as follows. When the first permanent magnet 110, the second permanent magnet 120, and the third permanent magnet 130 are arranged in a row as illustrated in
where
μ.sub.0: magnetic permeability of vacuum 4π×10.sup.−7 TmA.sup.−1
M: magnetization of a magnet
x: distance between two magnets
h: thickness (or height) of a magnet
R: radius of a magnet
[0068] The force F.sub.1 received by the first permanent magnet 110 and the force F.sub.2 received by the second permanent magnet 120 when the third permanent magnet 130 moves by y may be calculated by the following formula.
[0069] The load profile in
[0070] The present invention may calculate the load by sensing the displacements of the third permanent magnet and the actuator linked in such a manner and may also measure the behavior of the actuator caused by the load.
[0071] Furthermore, after replacing the actuator with a load cell, adjusting the third permanent magnet, measuring the load on the load cell, checking the load profile as shown in
[0072] The present invention is described with reference to the illustrated drawings but is not limited to the described embodiments, and it will be self-evident to those skilled in the art that various revisions and modifications may be made without departing from the spirit and scope of the present invention. Accordingly, such revisions and modifications are to belong to the claims of the present invention, and the scope of rights of the present invention is to be interpreted based on the appended claims.
TABLE-US-00001 DESCRIPTION OF REFERENCE NUMERALS 110: first permanent magnet 120, 121: second permanent magnet 130, 131: third permanent magnet 210: ferromagnetic body 11: load generating unit 12: first link 13-1: first bracket 13-2: second bracket 14: permanent magnet displacement adjusting unit 15: moment arm 16: moment arm bracket 16-1: coupling pin 17: second link 20: actuator