DOUBLE-LAYER SLIDING BEARING
20180003226 ยท 2018-01-04
Inventors
Cpc classification
F16C33/145
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/1065
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C17/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F2998/10
PERFORMING OPERATIONS; TRANSPORTING
F16C33/104
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B22F7/062
PERFORMING OPERATIONS; TRANSPORTING
F16C33/128
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/122
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C33/14
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A double-layer sliding bearing comprises an inner layer and an outer layer. An inner periphery of the outer layer is integrated with an outer periphery of the inner layer through moulds for molding processes. A circular bearing surface is formed on either an inner periphery of the inner layer or an outer periphery of the outer layer. A layer having the bearing surface is arranged by a porous thin-wall layer with high forming density. The other layer not having the bearing surface is arranged by a porous thick-wall layer with low forming density.
Claims
1. A double-layer sliding bearing, comprising: an inner layer and an outer layer, an inner periphery of the outer layer being integrated with an outer periphery of the inner layer through moulds for molding processes, a circular bearing surface being formed on either an inner periphery of the inner layer or an outer periphery of the outer layer; wherein a layer having the bearing surface is arranged by a porous thin-wall layer with high forming density, the other layer not having the bearing surface being arranged by a porous thick-wall layer with low forming density.
2. The double-layer sliding bearing of claim 1, wherein the shape and size of the inner periphery of the outer layer match with that of the outer periphery of the inner layer adapted to be press-fitted with each other tightly.
3. The double-layer sliding bearing of claim 2, wherein the outer periphery of the inner layer sets at least one rib formed axially thereon to latch on the corresponding at least one slot formed on the inner periphery of the outer layer.
4. The double-layer sliding bearing of claim 2, wherein the outer periphery of the inner layer sets at least one slot formed axially thereon to latch on the corresponding at least one rib formed on the inner periphery of the outer layer.
5. The double-layer sliding bearing of claim 1, wherein at least one of the inner layer and the outer layer is made from at least one of Fe, Cu and C powder, the Fe powder includes at least one of pure Fe powder and Cu coated Fe powder, the Cu in the Cu powder and Cu coated Fe powder includes at least one of copper, brass and bronze.
6. The double-layer sliding bearing of claim 1, wherein at least one of the inner layer and the outer layer contains at least one of Ni, Cr, Mo and Mn powder.
7. The double-layer sliding bearing of claim 1, wherein at least one of the inner layer and the outer layer is made from a blending powder of at least one of Fe, Cu and C powder and at least one of Ni, Cr, Mo and Mn powder, the Fe powder includes at least one of pure Fe powder and Cu coated Fe powder, the Cu in the Cu powder and Cu coated Fe powder includes at least one of copper, brass and bronze.
8. The double-layer sliding bearing of claim 1, wherein at least one groove is axially indented on the bearing surface of the inner layer.
9. The double-layer sliding bearing of claim 1, wherein the mould includes a central core rod surrounded by a die, between which an upper punch and a lower punch can apply compaction forces separately, a cavity of the mould is a concaved space with an elevation not higher than a die surface and is formed by surrounding the core rod and the die and the upper punch and the lower punch, all of which can be positioned, moved up and down separately.
10. The double-layer sliding bearing of claim 9, wherein at least two short thin-wall layers are respectively formed by pressing a powder forming the high density thin-wall layer in the cavity via at least one of the upper punch and the lower punch, each short thin-wall layer has a same diameter of the bearing surface and a same thickness of the thin-wall layer, a total length of at least two axial abutting short thin-wall layers is longer than a length of the thin-wall layer causing a forming density of each short thin-wall layer lower than that of the thin-wall layer, then the at least two axial abutting short thin-wall layers are loaded in the cavity and pressed at least once via the at least one of the upper punch and the lower punch until the total length of the at least two axial abutting short thin-wall layers is equal to the length of the thin-wall layer.
11. The double-layer sliding bearing of claim 10, wherein plural penetrating notches are radially indented on at least one of two adjacent end faces between at least one pair of two adjacent short thin-wall layers of the at least two axial abutting short thin-wall layers.
12. The double-layer sliding bearing of claim 9, wherein after loading the prepared high density thin-wall layer in the cavity to respectively make its lower end face and the bearing surface in contact with the corresponding lower punch and axial periphery of either the core rod or the die, a dummy part having a same diameter of the bearing surface and a same thickness of the thin-wall layer is loaded in the cavity in contact with the thin-wall layer and with its upper end face aligning to the die surface, then a powder forming the low density thick-wall layer is filled in a remaining space of the cavity, and then the descending upper punch applies a compaction force on the powder until an end face of the upper punch aligns to an upper end face of the thin-wall layer.
13. The double-layer sliding bearing of claim 9, wherein the mould has an annular groove formed by axially indenting from a top of either the core rod or the die to fit just right for accommodating the thin-wall layer therein.
14. The double-layer sliding bearing of claim 13, wherein after loading the prepared high density thin-wall layer in the annular groove, a powder forming the low density thick-wall layer is filled in a remaining space of the cavity with an axial length of the powder longer than that of the thin-wall layer, then the upper punch with its end face covering an upper area of the cavity abuts on the die surface, and then the ascending lower punch applies a compaction force on the powder until an end face of the lower punch aligns to a lower end face of the thin-wall layer.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0012]
[0013]
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[0020]
[0021]
[0022]
DETAILED DESCRIPTION
[0023]
[0024] The outer periphery of the inner layer 10 sets at least one rib 15 formed axially thereon to latch on the corresponding at least one slot 25 formed on the inner periphery of the outer layer 20 to enhance structural robustness, anti-vibration capability and load capacity. Similarly, the rib 15 may also be formed on the inner periphery of the outer layer 20 to latch on the corresponding slot 25 formed on the outer periphery of the inner layer 10.
[0025] Further, the double-layer sliding bearing 1 includes at least one groove 18 axially indented on the bearing surface 104 of the inner layer 10. Through the rotation of the shaft, the surplus lubricating media on the bearing surface 10A can be introduced into the groove 18 to reduce the loss of lubricating media and prevent the internal pollution of motor. In addition, the fine debris or oxides on the bearing surface 10A can also be introduced into the groove 18 to reduce tribology friction and avoid wear damage.
[0026]
[0027] Referring to
[0028] Referring to
[0029] Referring to
[0030] Referring to
[0031]
[0032]
[0033] The inner layer 10 and the outer layer 20 of the double-layer sliding bearing 1, 1a can be made respectively by a blending powder 22 from a commonly used base element such as at least one of Fe, Cu and C powder 22 and the anti-abrasion element such as at least one of Ni, Cr, Mo and Mn powder 22. In fact, the thin-wall layer with high forming density may have a considerable degree of structural strength and abrasion resistance, so that the inner layer 10 and the outer layer 20 can also be made from the base element only. The Fe powder 22 includes at least one of pure Fe powder 22 and Cu coated Fe powder 22. The Cu in the Cu powder 22 and Cu coated Fe powder 22 includes at least one of copper, brass and bronze.
[0034]
[0035]
[0036] The invention can be widely applied to different devices; the position and form for the installation of the double-layer sliding bearing 1, 1a are not limited to the drawings shown in the mounting surface 20B, 10B; and also the inner layer 10 and the outer layer 20 need not be limited to the same length. To meet such application requirements, a similar modeling process for the bearing can be realized by modifications or adjustments of the embodiments of the invention via the disclosed technical means and features, such as dimensions of the relevant mould components, configuration of the cavity 31, number and length of the dummy part 38 (if necessary), filling position of the powder 22, compressing length and position of the upper punch 34 and the lower punch 36, which do not depart from the spirit and scope of the invention.
[0037]
[0038]
[0039] While the preferred embodiments of the invention have been set forth for the purpose of disclosure, they are not the limitations of the invention, modifications of the disclosed embodiments of the invention as well as other embodiments thereof may occur to those skilled in the art. Accordingly, the appended claims are intended to cover all embodiments which do not depart from the spirit and scope of the invention.