JOURNAL BEARING STRUCTURE AND TURBOCHARGER HAVING THE SAME
20230167852 · 2023-06-01
Assignee
Inventors
Cpc classification
F16C33/1065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2360/24
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/1045
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C35/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Provided is a journal bearing structure including: a journal bearing that supports a rotary shaft by an inner circumferential surface; and a bearing housing that holds an outer circumferential surface of the journal bearing by the inner circumferential surface, the journal bearing has an oil supply hole through which the inner circumferential surface and the outer circumferential surface communicate with each other, the bearing housing has an oil supply hole opened to an inner circumferential surface, and an oil supply groove extending in a circumferential direction about an axis line and configured to guide a lubricant discharged from the oil supply hole to the oil supply hole is formed in the inner circumferential surface of the bearing housing.
Claims
1. A journal bearing structure comprising: a journal bearing that has a first inner circumferential surface and a first outer circumferential surface that are formed in a cylindrical shape extending in an axis line and supports a rotary shaft by the first inner circumferential surface; and a bearing housing that has a second inner circumferential surface formed in a cylindrical shape extending in the axis line and holds the first outer circumferential surface of the journal bearing by the second inner circumferential surface, wherein the journal bearing has a first oil supply hole through which the first inner circumferential surface and the first outer circumferential surface communicate with each other, wherein the bearing housing has a second oil supply hole opened to the second inner circumferential surface, and wherein an oil supply groove extending in a circumferential direction about the axis line and configured to guide a lubricant discharged from the second oil supply hole to the first oil supply hole is formed in at least one of the second inner circumferential surface of the bearing housing and the first outer circumferential surface of the journal bearing.
2. The journal bearing structure according to claim 1, wherein the oil supply groove is formed in the second inner circumferential surface of the bearing housing.
3. The journal bearing structure according to claim 1, wherein the oil supply groove is formed in the first outer circumferential surface of the journal bearing.
4. The journal bearing structure according to claim 1, wherein a width in the axis line direction of the oil supply groove is smaller than or equal to a width in the axis line direction of the second oil supply hole.
5. The journal bearing structure according to claim 1, wherein the oil supply groove is formed in the whole circumference in the circumferential direction about the axis line.
6. The journal bearing structure according to claim 1, wherein a first position in the circumferential direction at which the first oil supply hole is arranged and a second position in the circumferential direction at which the second oil supply hole is arranged are positions different from each other.
7. A turbocharger comprising: the journal bearing structure according to claim 1; the rotary shaft supported by the journal bearing structure; and a compressor connected to the rotary shaft.
8. The journal bearing structure according to claim 1, wherein the journal bearing is pressed into the bearing housing and thereby attached to the bearing housing.
Description
BRIEF DESCRIPTION OF DRAWINGS
[0017]
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
[0024]
[0025]
DESCRIPTION OF EMBODIMENTS
First Embodiment
[0026] An exhaust turbine turbocharger of the first embodiment of the present invention will be described below with reference to
[0027] As illustrated in
[0028] The housing 15 has a hollow inside and has a turbine housing 15A forming a first space S1 that accommodates components of the turbine 12, a compressor housing 15B forming a second space S2 that accommodates components of the compressor 13, and a bearing housing 15C forming a third space S3 that accommodates the rotary shaft 14. The third space S3 of the bearing housing 15C is located between the first space S1 of the turbine housing 15A and the second space S2 of the compressor housing 15B.
[0029] In the rotary shaft 14, the end on the turbine 12 side is rotatably supported by a journal bearing 21 that is a turbine side bearing, the end on the compressor 13 side is rotatably supported by a journal bearing 22 that is the compressor side bearing, and motion in the axial direction in which the rotary shaft 14 extends is restricted by a thrust bearing 23. In the rotary shaft 14, a turbine wheel 24 of the turbine 12 is fixed to one end in the axial direction.
[0030] The turbine wheel 24 is accommodated in the first space S1 of the turbine housing 15A, and a plurality of turbine blades 25 are provided to the outer circumference circumferentially at predetermined intervals. Further, in the rotary shaft 14, an external thread part 37 is formed in the other end in the axial direction and fastened in the screw hole 38 of a compressor impeller 26 of the compressor 13. The compressor impeller 26 is accommodated in the second space S2 of the compressor housing 15B, and a plurality of blades 27 are provided to the outer circumference circumferentially at predetermined intervals.
[0031] In the turbine housing 15A, an exhaust gas inlet passage 31 and an exhaust gas outlet passage 32 are provided to the turbine blades 25. Further, the turbine housing 15A can drive and rotate the turbine 12 when an exhaust gas flow flowing in from the inlet passage 31 is guided to the plurality of turbine blades 25. In the compressor housing 15B, an intake port 34 and a compressed air discharge port 35 are provided to the compressor impeller 26. The air compressed by the compressor impeller 26 is discharged to the compressed air discharge port 35.
[0032] Thus, in the exhaust turbine turbocharger 11, the turbine 12 is driven by an exhaust gas discharged from an engine (not illustrated), the rotation of the turbine 12 is transmitted to the rotary shaft 14 to drive the compressor 13, and the compressor 13 compresses and supplies a combustion gas to the engine. Therefore, the exhaust gas from the engine passes through the exhaust gas inlet passage 31, an exhaust gas flow is guided to the plurality of turbine blades 25, and thereby, the turbine 12 is driven and rotated via the turbine wheel 24 to which the plurality of turbine blades 25 are fixed.
[0033] The exhaust gas that has driven the plurality of turbine blades 25 is then discharged to the outside from the outlet passage 32. On the other hand, when the rotary shaft 14 is rotated by the turbine 12, the integrated compressor impeller 26 is rotated, and air is taken through the intake port 34. The taken air is pressurized by the compressor impeller 26 into compressed air, and this compressed air is supplied from the compressed air discharge port 35 to the engine.
[0034] Next, a journal bearing structure 100 of the present embodiment will be described with reference to the drawings. The journal bearing structure 100 of the present embodiment is a bearing structure that supports the rotary shaft 14 and has the journal bearing 21 and the bearing housing 15C. Although the journal bearing 21 will be described below, since the structure of the journal bearing 22 is the same as that of the journal bearing 21, the description thereof will be omitted.
[0035]
[0036] The journal bearing structure 100 illustrated in
[0037] As illustrated in
[0038] The journal bearing 21 has a back metal 21A formed in a cylindrical shape extending in the axis line X and a bearing metal 21B joined to the inside of the back metal 21A. The back metal 21A is formed of a metal material such as iron. The bearing metal 21B is formed of a metal material such as a copper alloy or platinum.
[0039] The journal bearing 21 has oil supply holes (first oil supply hole) 21c each extending in the radial direction orthogonal to the axis line X and opened to both the inner circumferential surface 21a and the outer circumferential surface 21b. Each oil supply hole 21c causes the inner circumferential surface 21a and the outer circumferential surface 21b to communicate with each other and is used for supplying a lubricant supplied from the bearing housing 15C to the gap between the inner circumferential surface 21a and the rotary shaft 14. As illustrated in
[0040] Recesses 21d in which the bearing metal 21B forming the inner circumferential surface 21a is not provided are formed around the oil supply holes 21c on the inner circumference side of the journal bearing 21. Each recess 21d is a region recessed toward the outer circumferential surface 21b side from the surrounding inner circumferential surface 21a. The lubricant flowing out of the oil supply hole 21c is guided between the inner circumferential surface 21a and the rotary shaft 14 due to rotation of the rotary shaft 14 while a certain amount thereof is held in the recess 21d. With the recess 21d being provided, the lubricant discharged from the oil supply hole 21c can be smoothly guided between the inner circumferential surface 21a and the rotary shaft 14.
[0041] As illustrated in
[0042] The bearing housing 15C has oil supply holes (second oil supply hole) 15b and an oil supply groove 15c. Each oil supply hole 15b is a through hole extending in the radial direction orthogonal to the axis line X and opened to the inner circumferential surface 15a. Through the oil supply holes 15b, the lubricant supplied from an oil supply system (not illustrated) provided inside the bearing housing 15C is supplied to the oil supply holes 21c of the journal bearing 21 via the oil supply groove 15c described later.
[0043] As illustrated in
[0044] The oil supply groove 15c is a groove extending in the circumferential direction about the axis line X, formed circumferentially in the whole circumference, and having a depth in the radial direction. The oil supply groove 15c is formed in the inner circumferential surface 15a of the bearing housing 15C and recessed in a direction away from the axis line X. The oil supply groove 15c guides the lubricant discharged from the oil supply holes 15b to the oil supply holes 21c of the journal bearing 21. The oil supply groove 15c of the present embodiment is formed in the inner circumferential surface 15a of the bearing housing 15C and is not formed in the outer circumferential surface 21b of the journal bearing 21. It is thus possible to suppress a reduction in strength due to thinning of the journal bearing 21.
[0045] As illustrated in
W1≤W2 (1)
[0046] The reason why the width W1 of the oil supply groove 15c is smaller than or equal to the width W2 of the oil supply hole 21c is to ensure a sufficient contact area between the bearing housing 15C and the journal bearing 21 and reliably maintain the state where the journal bearing 21 is pressed into and thereby fixed to the bearing housing 15C.
[0047] The journal bearing structure 100 illustrated in
[0048] On the other hand, the journal bearing structure 100 illustrated in
[0049] As illustrated in
[0050] Without the oil supply groove 15c provided in the state illustrated in
[0051] The effects and advantages achieved by the journal bearing structure 100 of the present embodiment described above will be described.
[0052] According to the journal bearing structure 100 of the present embodiment, the oil supply groove 15c is formed in the inner circumferential surface 15a of the bearing housing 15C. Thus, even when a state where the journal bearing 21 is held by the bearing housing 15C is released and the circumferential positions of the oil supply hole 15b and the oil supply hole 21c differ from each other, a state where a lubricant discharged from the oil supply hole 15b is guided to the oil supply hole 21c is maintained. It is therefore possible to provide the journal bearing structure 100 that can supply the lubricant to a gap between the journal bearing 21 and the rotary shaft 14 even in a state where the circumferential positions of the oil supply hole 21c of the journal bearing 21 and the oil supply hole 15b of the bearing housing 15C are different from each other.
[0053] In the journal bearing structure 100 of the present embodiment, the width W1 in the axis line X direction of the oil supply groove 15c is substantially the same as the width W2 in the axis line X direction of the oil supply hole 15b. If the width W1 in the axis line X direction of the oil supply groove 15c is excessively wider than the width W2 in the axis line X direction of the oil supply hole 15b, a region where the inner circumferential surface 15a of the bearing housing 15C holds the outer circumferential surface 21b of the journal bearing 21 will decrease, and the force to hold the journal bearing 21 by the bearing housing 15C will decrease.
[0054] Further, if the width W1 in the axis line X direction of the oil supply groove 15c is excessively narrower than the width W2 in the axis line X direction of the oil supply hole 15b, smooth supply of the lubricant from the oil supply hole 15b to the oil supply groove 15c will not be performed. In the journal bearing structure 100 of the present embodiment, since the widths in the axis line X direction of the oil supply groove 15c and the oil supply hole 15b are substantially the same, the failure described above can be suppressed.
[0055] In the journal bearing structure 100 of the present embodiment, the oil supply groove 15c is formed in the whole circumference in the circumferential direction about the axis line X. Since the oil supply groove 15c is formed in the whole circumference in the circumferential direction, even when the circumferential positions of the oil supply hole 15b of the bearing housing 15C and the oil supply hole 21c of the journal bearing 21 are in any circumferential positional relationship, the lubricant can be reliably supplied from the oil supply holes 15b to the oil supply holes 21c by the oil supply groove 15c.
Second Embodiment
[0056] Next, an exhaust turbine turbocharger of the second embodiment of the present invention will be described. The present embodiment is a modified example of the first embodiment and is the same as the first embodiment except for features described in particular below, and some description thereof will be omitted below. The exhaust turbine turbocharger of the present embodiment is the same as the exhaust turbine turbocharger of the first embodiment except for the journal bearing structure.
[0057] In the journal bearing structure 100 of the first embodiment, the oil supply groove 15c extending in the circumferential direction about the axis line X is provided in the inner circumferential surface 15a of the bearing housing 15C. In contrast, in a journal bearing structure 100A of the present embodiment, an oil supply groove 21e is provided in the outer circumferential surface 21b of the journal bearing 21.
[0058]
[0059] The journal bearing structure 100A illustrated in
[0060] The journal bearing structure 100A illustrated in
[0061] The journal bearing 21 has an oil supply groove 21e. The oil supply groove 21e is a groove extending in the circumferential direction about the axis line X, formed circumferentially in the whole circumference, and having a depth in the radial direction. The oil supply groove 21e is formed in the outer circumferential surface 21b of the journal bearing 21 and recessed in a direction approaching the axis line X. The oil supply groove 21e guides the lubricant discharged from the oil supply holes 15b to the oil supply holes 21c of the journal bearing 21.
[0062] As illustrated in
W3≤W2 (2)
[0063] The reason why the width W3 of the oil supply groove 21e is smaller than or equal to the width W2 of the oil supply hole 15b is to ensure a sufficient contact area between the bearing housing 15C and the journal bearing 21 and reliably maintain the state where the journal bearing 21 is pressed into and thereby fixed to the bearing housing 15C.
[0064] The journal bearing structure 100A illustrated in
[0065] On the other hand, the journal bearing structure 100A illustrated in
[0066] As illustrated in
[0067] Without the oil supply groove 21e provided in the state illustrated in
[0068] According to the journal bearing structure 100A of the present embodiment described above, the oil supply groove 21e is formed in the outer circumferential surface 21b of the journal bearing 21. Thus, even when a state where the journal bearing 21 is held by the bearing housing 15C is released and the circumferential positions of the oil supply hole 15b and the oil supply hole 21c differ from each other, a state where a lubricant discharged from the oil supply hole 15b is guided to the oil supply hole 21c is maintained. It is therefore possible to provide the journal bearing structure 100A that can supply the lubricant to a gap between the journal bearing 21 and the rotary shaft 14 even in a state where the circumferential positions of the oil supply hole 21c of the journal bearing 21 and the oil supply hole 15b of the bearing housing 15C are different from each other.
[0069] The oil supply groove 21e of the present embodiment is formed in the outer circumferential surface 21b of the journal bearing 21 and is not formed in the inner circumferential surface 15a of the bearing housing 15C as with the first embodiment. The journal bearing 21 is a smaller member than the bearing housing 15C. Thus, processing to form the oil supply groove 21e in the outer circumferential surface 21b of the journal bearing 21 is easier than processing to form the oil supply groove 15c in the inner circumferential surface 15a of the bearing housing 15C. According to the present embodiment, it is possible to easily perform the processing to form the oil supply groove.
[0070] In the journal bearing structure 100A of the present embodiment, the width W3 in the axis line X direction of the oil supply groove 21e is substantially the same as the width W2 in the axis line X direction of the oil supply hole 15b. If the width W3 in the axis line X direction of the oil supply groove 21e is excessively wider than the width W2 in the axis line X direction of the oil supply hole 15b, a region where the inner circumferential surface 15a of the bearing housing 15C holds the outer circumferential surface 21b of the journal bearing 21 will decrease, and the force to hold the journal bearing 21 by the bearing housing 15C will decrease.
[0071] Further, if the width W3 in the axis line X direction of the oil supply groove 21e is excessively narrower than the width W2 in the axis line X direction of the oil supply hole 15b, smooth supply of the lubricant from the oil supply hole 15b to the oil supply groove 21e will not be performed. In the journal bearing structure 100A of the present embodiment, since the widths in the axis line X direction of the oil supply groove 21e and the oil supply hole 15b are substantially the same, the failure described above can be suppressed.
[0072] In the journal bearing structure 100A of the present embodiment, the oil supply groove 21e is formed in the whole circumference in the circumferential direction about the axis line X. Since the oil supply groove 21e is formed in the whole circumference in the circumferential direction, even when the circumferential positions of the oil supply hole 15b of the bearing housing 15C and the oil supply hole 21c of the journal bearing 21 are in any circumferential positional relationship, the lubricant can be reliably supplied from the oil supply holes 15b to the oil supply holes 21c by the oil supply groove 21e.
OTHER EMBODIMENTS
[0073] Although each of the oil supply groove 15c and the oil supply groove 21e is provided in the whole circumference about the axis line X in the above description, other forms may be employed. For example, each of the oil supply groove 15c and the oil supply groove 21e may be provided in a part of the region in the circumferential direction about the axis line X (for example, a region of half the circumference).
[0074] Further, although the oil supply groove is provided in either one of the inner circumferential surface 15a of the bearing housing 15C and the outer circumferential surface 21b of the journal bearing 21 in the above description, other forms may be employed. For example, the oil supply groove may be provided in both of the inner circumferential surface 15a of the bearing housing 15C and the outer circumferential surface 21b of the journal bearing 21. With the oil supply grooves being provided to both the circumferential surfaces, a sufficient volume of lubricant flowing through the oil supply grooves can be ensured. In such a way, the oil supply groove may be provided at least one of the inner circumferential surface 15a of the bearing housing 15C and the outer circumferential surface 21b of the journal bearing 21.
[0075] In the journal bearing structure 100 described above, if the rotary shaft 14 and the journal bearing 21 have been seized due to use and thereby the state of the journal bearing 21 pressed into the bearing housing 15C has been at least temporarily released, the circumferential position at which the oil supply hole 21c is arranged and the circumferential position at which the oil supply hole 15b is arranged differ from each other.
[0076] In this regard, as another form, the circumferential position at which the oil supply hole 21c is arranged and the circumferential position at which the oil supply hole 15b is arranged may be different from the time of manufacturing of the journal bearing structure 100. In such a case, for example, since it is not necessary to match the circumferential positions of the oil supply hole 21c and the oil supply hole 15b to each other when attaching the journal bearing 21 to the bearing housing 15C, this facilitates attachment operation.
[0077] Further, the number of oil supply holes 15b provided in the bearing housing 15C may be less than the number of oil supply holes 21c provided in the journal bearing 21. For example, the number of oil supply holes 21c provided in the journal bearing 21 may be three, and the number of oil supply holes 15b provided in the bearing housing 15C may be one. Since the lubricant is supplied via the oil supply groove 15c even when the number of oil supply holes 15b provided in the bearing housing 15C is less than the number of oil supply holes 21c provided in the journal bearing 21, the oil supply system that supplies the lubricant to the bearing housing 15C can be simplified.
REFERENCE SIGNS LIST
[0078] 11 exhaust turbine turbocharger [0079] 15C bearing housing [0080] 15a inner circumferential surface [0081] 15b oil supply hole [0082] 15c oil supply groove [0083] 21 journal bearing [0084] 21A back metal [0085] 21B bearing metal [0086] 21a inner circumferential surface [0087] 21b outer circumferential surface [0088] 21c oil supply hole [0089] 21d recess [0090] 21e oil supply groove [0091] 22 journal bearing [0092] 100, 100A journal bearing structure [0093] X axis line