FOIL AIR BEARING HAVING HERRINGBONE PATTERN
20230366428 · 2023-11-16
Inventors
Cpc classification
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C27/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/024
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
Provided is a foil air bearing having a herringbone pattern to sustain a load of a rotor rotating in a predetermined rotation direction around a center line, the foil air bearing including an upper top foil disposed to face a surface of the rotor, a middle top foil disposed under the upper top foil, a lower top foil disposed under the middle top foil, a bump foil provided as an elastically deformable member and disposed under the lower top foil, and a plurality of slots provided as holes penetrating from an upper surface to a lower surface of the middle top foil, and extending along a lengthwise direction forming a predetermined angle with a rotation direction of the rotor, wherein the upper top foil is deformed in a downward concave shape at locations corresponding to the slots due to air pressure generated by rotation of the rotor, so as to form a herringbone pattern. As such, a herringbone pattern satisfying design requirements may be easily formed and an overall manufacturing cost may be reduced by forming the slots through pressing without using etching or welding.
Claims
1. A foil air bearing for sustaining a load of a rotor rotating in a predetermined rotation direction around a center line, the foil air bearing comprising: an upper top foil disposed to face a surface of the rotor; a middle top foil disposed under the upper top foil; a lower top foil disposed under the middle top foil; a bump foil provided as an elastically deformable member and disposed under the lower top foil; and a plurality of slots provided as holes penetrating from an upper surface to a lower surface of the middle top foil, and extending along a lengthwise direction forming a predetermined angle with a rotation direction of the rotor, wherein the upper top foil is deformed in a downward concave shape at locations corresponding to the slots due to air pressure generated by rotation of the rotor, so as to form a herringbone pattern.
2. The foil air bearing of claim 1, wherein the plurality of slots are spaced apart from each other by a predetermined distance and symmetrically disposed with respect to an imaginary line of symmetry parallel to the rotation direction.
3. The foil air bearing of claim 1, wherein the top foils and the bump foil have a shape that is mass-producible by being automatically cut and bent through pressing without using etching or welding.
4. The foil air bearing of claim 1, wherein a lower surface of the middle top foil and an upper surface of the lower top foil are stacked on one another in a separable state.
5. The foil air bearing of claim 1, wherein the foil air bearing comprises a journal foil air bearing in which the rotor is provided in a form of a rotating shaft, and wherein the journal foil air bearing comprises: a base foil disposed to surround the bump foil; and a coupler for coupling one ends of the plurality of top foils, one end of the bump foil, and both ends of the base foil to each other.
6. The foil air bearing of claim 1, wherein the foil air bearing comprises a journal foil air bearing in which the rotor is provided in a form of a rotating shaft, and wherein, at a location where the rotor is close to the upper top foil while the rotor is rotating, the slots are provided more densely compared to other locations.
7. The foil air bearing of claim 1, wherein the foil air bearing comprises a thrust foil air bearing in which the rotor is provided in a form of a rotating plate, wherein the middle top foil is provided in a form of a circular plate, and wherein the slots are arranged along an imaginary circle having the center line as a center of the circle.
Description
DESCRIPTION OF THE DRAWINGS
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BEST MODE
[0037] Hereinafter, the present invention will be described in detail by explaining embodiments of the invention with reference to the attached drawings.
[0038]
[0039] Referring to
[0040] The base foil 10 is a circular pipe member formed by pressing a flexible and elastic metal sheet as shown in
[0041] In the current embodiment, the base foil 10 is made in the form of a pipe having a “C”-shaped cross-section, by rolling a pressed rectangular metal sheet around the center line C.
[0042] The base foil 10 is a circular pipe member extending by a predetermined length along the center line C, and includes a hollow H having the center line C as the center of a circle.
[0043] The base foil 10 is disposed to surround the bump foil 20 to be described below, such that the bump foil 20 is accommodated in the hollow H of the base foil 10.
[0044] Both ends of the base foil 10 are bent in an “L” shape and protrude upward as shown in
[0045] The bump foil 20 is a circular pipe member formed by pressing a flexible and elastic metal sheet as shown in
[0046] The bump foil 20 is a circular pipe member extending by a predetermined length along the center line C, and includes a hollow H having the center line C as the center of a circle.
[0047] In the current embodiment, the bump foil 20 is made in the form of a pipe having a “C”-shaped cross-section, by rolling a pressed rectangular metal sheet around the center line C.
[0048] The bump foil 20 is disposed to surround the lower top foil 50 while being accommodated in the hollow H of the base foil 10.
[0049] The bump foil 20 includes a wave-shaped portion in which a plurality of peaks and valleys are connected alternately, so as to be elastically deformable in a radius direction of the center line C.
[0050] A right end of the bump foil 20 is bent in an “L” shape and protrudes upward as shown in
[0051] A left end of the bump foil 20 is a free end that may move freely as shown in
[0052] In the current embodiment, a pair of bump foils 20 are provided and stacked on one another as shown in
[0053] The upper top foil 30 is a circular pipe member formed by pressing a flexible and elastic metal sheet as shown in
[0054] The upper top foil 30 is a circular pipe member extending by a predetermined length along the center line C, and includes a hollow H having the center line C as the center of a circle.
[0055] In the current embodiment, each of the upper top foil 30, the middle top foil 40, and the lower top foil 50 is made in the form of a pipe having a “C”-shaped cross-section, by rolling a pressed rectangular metal sheet around the center line C.
[0056] The upper top foil 30 is disposed to surround the rotating shaft F while being accommodated in the hollow H of the bump foil 20.
[0057] At a left end of the upper top foil 30, the coupler 60 bent in a “∩” shape is provided.
[0058] A right end of the upper top foil 30 is a free end that may move freely as shown in
[0059] A surface of the upper top foil 30 facing the outer circumferential surface of the rotating shaft F is coated with a coating material (not shown) including polytetrafluoroethylene (PTFE). PTFE is also called Teflon.
[0060] The upper top foil 30 has a material and thickness capable of deforming the upper top foil 30 in a downward concave shape at locations corresponding to slots 41 as shown in
[0061] When the thickness of the upper top foil 30 has an excessively large value, the herringbone pattern may not be formed to a sufficient depth.
[0062] Like the upper top foil 30, the middle top foil 40 is a circular pipe member extending by a predetermined length along the center line C, and includes a hollow H having the center line C as the center of a circle.
[0063] The middle top foil 40 is disposed to surround the upper top foil 30 while being accommodated in a hollow H of the lower top foil 50 to be described below.
[0064] A right end of the middle top foil 40 is bent in an “L” shape and protrudes upward as shown in
[0065] A left end of the middle top foil 40 is a free end that may move freely as shown in
[0066] In the middle top foil 40, a plurality of slots 41 are provided as shown in
[0067] The slots 41 are holes penetrating from an upper surface to a lower surface of the middle top foil 40, and are symmetrically disposed with respect to an imaginary line of symmetry Y parallel to the rotation direction W of the rotating shaft F as shown in
[0068] The slots 41 are strip-shaped holes having a planar parallelogram shape as shown in
[0069] The slots 41 extend along the lengthwise direction forming a predetermined angle θ with the line of symmetry Y parallel to the rotation direction W of the rotating shaft F.
[0070] The angle θ is an acute angle less than 90°, and a value thereof may be changed when necessary. In the current embodiment, the angle θ is 45°.
[0071] The plurality of slots 41 are spaced apart from each other by a predetermined distance along the line of symmetry Y.
[0072] Eventually, the middle top foil 40 has a herringbone pattern as shown in
[0073] Herein, the herringbone is a word meaning ‘the bones of a fish called herring’, and the herringbone pattern refers to a design or pattern in which a plurality of fish bone shapes or arrow shapes are arranged next to each other.
[0074] The middle top foil 40 may be processed through wire cutting, punching, or water jet cutting.
[0075] In the current embodiment, the middle top foil 40 has a thickness less than or equal to 0.2 mm.
[0076] Meanwhile,
[0077] The middle top foils 40a and 40b include the slots 41 having closed ends, and the middle top foils 40c, 40d, and 40e include the slots 41 having open ends.
[0078] Particularly, the middle top foil 40c has a shape in which the slots 41 of a certain portion have a width d less than that of the other slots 41 and a distance between the slots 41 of the certain portion is less that that between the other slots 41.
[0079] Generally, in the journal foil air bearing 100, when the rotating shaft F rotates, a distance between the rotating shaft F and the upper top foil 30 varies depending on a location as shown in
[0080] Therefore, when the middle top foil 40c is used, at a location where the rotating shaft F is relatively close to the upper top foil 30, i.e., at a middle portion of the middle top foil 40c of
[0081] In the current embodiment, the middle top foil 40 has a structure similar to the middle top foil 40d illustrated in
[0082] The slots 41 may be provided over the entire length of the middle top foil 40 as shown in
[0083] Like the upper top foil 30, the lower top foil 50 is a circular pipe member extending by a predetermined length along the center line C, and includes a hollow H having the center line C as the center of a circle.
[0084] The lower top foil 50 is disposed to surround the middle top foil 40 while being accommodated in the hollow H of the bump foil 20.
[0085] A left end of the lower top foil 50 is bent in an “L” shape and protrudes upward as shown in
[0086] A right end of the lower top foil 50 is a free end that may move freely as shown in
[0087] A thickness of the lower top foil 50 may be greater than the thickness of the middle top foil 40 because the lower top foil 50 serves to support the middle top foil 40.
[0088] In the current embodiment, a lower surface of the middle top foil 40 and an upper surface of the lower top foil 50 are not bonded to each other through welding or the like, and are merely stacked on one another in a separable state.
[0089] Therefore, as shown in a cross-sectional view of the journal foil air bearing 100 of
[0090] The base foil 10, the bump foil 20, and the top foils 30, 40, and 50 may be formed using metal sheets made of the same material, and have different thicknesses.
[0091] In the current embodiment, the top foils 30, 40, and 50, the bump foil 20, and the base foil 10 have a shape that is mass-producible by being automatically cut and bent through pressing without using etching or welding.
[0092] The coupler 60 is a portion for coupling one ends of the plurality of top foils 30, 40, and 50, one end of the bump foil 20, and both ends of the base foil 10 to each other as shown in
[0093] Although not shown in detail, as shown in
[0094] In the current embodiment, the coupling member (not shown) is a “⊂”-shaped sheet member which is inserted into the coupling holes (not shown) and then bent at both ends and plastically deformed to fix the top foils 30, 40, and 50, the bump foil 20, and the base foil 10 to each other.
[0095] An example of the operational principle of the above-described journal foil air bearing 100 will now be described.
[0096] Initially, when the rotating shaft F starts to rotate, portions of the upper top foil 30 are deformed in a downward concave shape as shown in
[0097] When the air guide grooves M are formed as described above, air inflows U are generated from both sides of the upper top foil 30 diagonally toward the line of symmetry Y in the middle on the upper surface of the upper top foil 30 as shown in
[0098] The above-described journal foil air bearing 100 is a foil air bearing for sustaining a load of the rotor F rotating in a predetermined rotation direction around the center line C, and includes the upper top foil 30 disposed to face a surface of the rotor F, the middle top foil 40 disposed under the upper top foil 30, the lower top foil 50 disposed under the middle top foil 40, the bump foil 20 provided as an elastically deformable member and disposed under the lower top foil 50, and the plurality of slots 41 provided as holes penetrating from an upper surface to a lower surface of the middle top foil 40, and extending along a lengthwise direction forming the predetermined angle θ with the rotation direction W of the rotor F, wherein the upper top foil 30 is deformed in a downward concave shape at locations corresponding to the slots 41 due to air pressure generated by the rotation of the rotor F, so as to form a herringbone pattern. As such, a herringbone pattern satisfying design requirements may be easily formed and an overall manufacturing cost may be reduced by forming the slots 41 through pressing without using etching or welding.
[0099] According to the journal foil air bearing 100, because the plurality of slots 41 are spaced apart from each other by a predetermined distance and symmetrically disposed with respect to the imaginary line of symmetry Y parallel to the rotation direction W, pressure leakage from both sides of the bearing may be reduced and thus the load capacity and the performance of the bearing may be increased.
[0100] According to the journal foil air bearing 100, because the top foils 30, 40, and 50 and the bump foil 20 have a shape that is mass-producible by being automatically cut and bent through pressing without using etching or welding, an overall manufacturing cost and manufacturing time may be reduced.
[0101] According to the journal foil air bearing 100, because a lower surface of the middle top foil 40 and an upper surface of the lower top foil 50 are stacked on one another in a separable state, unlike a general journal foil air bearing including grooves with bottoms, the middle top foil 40 may be selectively repaired or replaced after long time use.
[0102] According to the journal foil air bearing 100, because the coupler 60 for coupling one ends of the plurality of top foils 30, 40, and 50, one end of the bump foil 20, and both ends of the base foil 10 to each other is included, the journal foil air bearing 100 may be provided as a “modularized” bearing which may be simply inserted into a bearing housing.
[0103] In the current embodiment, the coupler 60 includes the coupling member (not shown) provided as a “⊂”-shaped sheet member, and the coupling holes (not shown) provided in both ends of the base foil 10 and one ends of the bump foil 20 and the top foils 30, 40, and 50, but may also include an arbitrary coupling device.
[0104] Meanwhile,
[0105] The configurations and effects of the thrust foil air bearing 200 and the journal foil air bearing 100 are mostly similar, and thus only differences between the two will now be described.
[0106] The thrust foil air bearing 200 differs from the journal foil air bearing 100 in that the foils 210, 220, 230, 240, and 250 are provided in the form of a circular plate having a hollow.
[0107] The thrust foil air bearing 200 also differs from the journal foil air bearing 100 in that the middle top foil 240 is provided in the form of a circular plate and the slots 41 are arranged along an imaginary circle Y having the center line C as the center of the circle.
[0108] However, as shown in
[0109] Therefore, according to the thrust foil air bearing 200, the upper top foil 230 may be deformed in a downward concave shape at locations corresponding to the slots 41 as shown in
[0110] While the present invention has been particularly shown and described with reference to embodiments thereof, it will be understood by one of ordinary skill in the art that various changes in form and details may be made therein without departing from the scope of the present invention as defined by the following claims.