Oil film bearing
09714679 ยท 2017-07-25
Assignee
Inventors
Cpc classification
F16C32/0629
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0651
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C32/0648
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2208/32
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C2043/026
PERFORMING OPERATIONS; TRANSPORTING
F16C2320/23
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C2300/42
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C43/021
PERFORMING OPERATIONS; TRANSPORTING
B29C43/006
PERFORMING OPERATIONS; TRANSPORTING
B29K2027/18
PERFORMING OPERATIONS; TRANSPORTING
F16C2208/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29K2023/0683
PERFORMING OPERATIONS; TRANSPORTING
B29C43/184
PERFORMING OPERATIONS; TRANSPORTING
B29K2105/251
PERFORMING OPERATIONS; TRANSPORTING
F16C33/26
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C33/20
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F16C13/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F16C32/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
B29C43/18
PERFORMING OPERATIONS; TRANSPORTING
B29C43/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
An oil film bearing for supporting a roll neck in a rolling mill, suitable in particular for transmitting high bearing forces when the bearing partners are slightly and slowly moved with respect to each other, has a bearing surface into which are incorporated rods made of a friction-reducing material (e.g., low friction compounds), which extend in a substantially perpendicular direction to the bearing surface. The rods are deformed during heat processing to define a bearing surface. The bearing partner, such as a roll sleeve, rests on the free face of the deformed rods.
Claims
1. An oil film bearing for rotatably supporting a roll neck in a rolling mill, said oil film bearing comprising: a rotating section having a generally cylindrical outer surface; a generally cylindrical, fiber-reinforced polymer bushing comprising polytetrafluoroethylene (PTFE) or ultra high molecular weight polymer (UHMW) and providing a generally cylindrical bearing surface, wherein the outer surface of the rotating section is rotatably supported on a film of oil on the bearing surface; and a plurality of oil conduits for supplying pressurized oil between the outer surface of the rotating section and the polymer bushing to establish the oil film, wherein the bearing surface is defined by a plurality of heat deformed PTFE or UHMW elements, wherein each of the plurality of elements is received within an opening in a bearing block, wherein the elements are heat-deformed in a manufacturing process to define the generally cylindrical bearing surface, with said manufacturing process including: inserting said PTFE or UHMW elements into boreholes of the bearing block, heating the PTFE or UHMW elements to a temperature resulting in a degree of plasticity, inserting a die into the bushing, and outwardly forcing the die toward the bearing block to deform the heated PTFE or UHMW elements into a generally cylindrical form.
2. The oil film bearing of claim 1, wherein the boreholes are perpendicular to the bearing surface or offset relative to the bearing surface.
3. An oil film bearing for rotatably supporting a roll neck in a rolling mill, said oil film bearing comprising: a rotating section having a generally cylindrical outer surface; a generally cylindrical, fiber-reinforced polymer bushing comprising polytetrafluoroethylene (PTFE) or ultra high molecular weight polymer (UHMW) and providing a generally cylindrical bearing surface, wherein the outer surface of the rotating section is rotatably supported on a film of oil on the bearing surface; and a conduit for supplying pressurized oil between the outer surface of the rotating section and the polymer bushing to establish the oil film, wherein the polymer bushing is a generally homogenous plate having a generally smooth surface and a plurality of pins, wherein the plate is heat-deformed in a manufacturing process to define the generally cylindrical bearing surface, with said manufacturing process including: inserting said plurality of pins into a plurality of boreholes of the bearing block, heating the polymer bushing to a temperature resulting in a degree of plasticity, inserting a die into the polymer bushing, and forcing the die toward the bearing block to deform the heated polymer bushing into a generally cylindrical form.
4. The oil film bearing of claim 3 wherein the plate is defined using a powdered PTFE or UHMW material.
5. The oil film bearing of claim 4 further comprising: sintering the plate of powdered PTFE or UHMW material.
6. An oil film bearing for rotatably supporting a roll neck in a rolling mill, said oil film bearing comprising: a rotating section having a generally cylindrical outer surface; a generally cylindrical, fiber-reinforced polymer bushing comprising polytetrafluoroethylene (PTFE) or ultra high molecular weight polymer (UHMW) and providing a generally cylindrical bearing surface, wherein the outer surface of the rotating section is rotatably supported on a film of oil on the bearing surface; and a conduit for supplying pressurized oil between the outer surface of the rotating section and the polymer bushing to establish the oil film, wherein the bearing surface is defined by a plurality of heat deformed PTFE or UHMW elements, wherein each of the plurality of elements is received within an opening in a bearing block, wherein the elements are heat-deformed in a manufacturing process to define the generally cylindrical bearing surface, with said manufacturing process including: inserting said PTFE or UHMW elements into boreholes of the bearing block, heating the PTFE or UHMW elements to a temperature resulting in a degree of plasticity, and outwardly forcing the PTFE or UHMW elements into a generally cylindrical form.
7. An oil film bearing for rotatably supporting a roll neck in a rolling mill, said oil film bearing comprising: a rotating section having a generally cylindrical outer surface; and a generally cylindrical, fiber-reinforced polymer bushing comprising polytetrafluoroethylene (PTFE) or ultra high molecular weight polymer (UHMW) and providing a generally cylindrical bearing surface, wherein the outer surface of the rotating section is rotatably supported on a film of oil on the bearing surface; wherein the polymer bushing is defined as a generally homogenous plate having a generally smooth surface and a plurality of protuberances sized to be inserted into a plurality of boreholes in a bearing block, wherein the plate is heat-deformed in a manufacturing process including: heating the plate to a temperature resulting in a degree of plasticity, and deforming the plate into a generally cylindrical form.
8. The oil film bearing of claim 7 wherein the plate is formed of powdered PTFE or UHMW material.
9. The oil film bearing of claim 8 wherein the powdered PTFE or UHMW material is sintered.
10. The oil film bearing of claim 7 wherein said deforming the plate includes using an external die to change the shape of the plate.
11. The oil film bearing of claim 7 wherein said deforming the plate includes using a hydrostatic form to compact the plate.
12. The oil film bearing of claim 7 wherein the plurality of protuberances is a plurality of cylindrical pins.
13. The oil film bearing of claim 7 wherein the plate is initially a preform of powdered PTFE or UHMW material.
14. The oil film bearing of claim 13 wherein the powdered preform is compacted and sintered away from the bearing block and subsequently inserted into the bearing block.
15. The oil film bearing of claim 13 wherein the powdered preform is compacted and sintered after the preform is inserted into the bearing block.
16. The oil film bearing of claim 7 wherein the polymer bushing includes a conduit for supplying pressurized oil at the bearing surface.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE INVENTION
(23) Referring to the drawings,
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(30) The manufacturing process would include steps of defining boreholes in the bushing block 40, inserting PTFE rods 42 into the boreholes, heat treatment of the PTFE rods 42 to temperature resulting in a degree of plasticity, inserting the die halves 50 and hydraulic cylinder 52 into the bushing block 40, and expanding the die halves 50 to engage and deform the PTFE rods 42 into a generally cylindrical PTFE bearing surface. Additional machining steps of the deformed rod 42 ends may be necessary to configure the bearing surface.
(31) In accordance with the present invention, the boreholes 44 may be perpendicular to the bearing surface or may be offset relative to the bearing surface. The boreholes 44 may be closed or open-ended, and may include holes of two or more different sizes. Moreover, the boreholes 44 may be cylindrical, structured or tapered along their lengths. The top edges of the boreholes 44 may be chamfered.
(32) In accordance with the present invention, the rods 42 may be formed from a low friction material such as, but not limited to, a polytetrafluoroethylene (PTFE) material, or materials made from other types of low-friction polymers such as ultra high molecular weight (UHMW) polymers. The rods 42 may be reinforced with glass fibers or other strengthening fibers such as, but not limited to, KEVLAR, carbon fiber, ceramics, and nano-fibers. The rods 42 may be equally sized, or two or more differently sized rods 42 can be utilized within a given bushing. For example, the rods within a bushing may have different diameters, lengths, materials, etc.
(33) The bearing block 40, structure or ring of the oil film bearing of the present invention is preferably formed of a steel alloy, such as a quenched and tempered and/or hardened steel alloy. The area of the bearing surface inside the bearing block, ring or structure may be open to the ends or closed by raised edges.
(34) The rods 42 may be arranged in the bearing block 40 in rows which run perpendicular to the bearing surface, or in any appropriate angle to the preferred direction of movement. The rods 42 may be placed in rows, with neighboring rows being offset from each other by a distance such as, but not limited to, a distance equal to half of the spacing between the rods in a row.
(35) The low friction bearing surface of the oil film bearing of the present invention may be covered by additional and specific coatings to increase the surface protection and/or reduce the overall coefficient of friction. Novel coatings, such as advanced nanoparticle coatings, may be utilized to provide further protection or enhanced performance for the low friction bearing surface. Lubricants on the bearing surface may include specific additives which optimize their use on low friction surfaces. The lubricants may also include additives which protect the entire oil system or circuit of the entire oil-film application against contamination from specific types of bacteria which cause bio-corrosion.
(36) Sensors may be provided within the bearing of the present invention to provide temperature, flow and/or pressure information. Sensors may also be provided to provide information relevant to conditions such as, but not limited to, lubrication conditions, the presence of water contamination, and pH conditions.
(37) The sensors may also be provided to detect the presence of certain biologics, such as corrosion-causing biologics. Microbiologically-Influenced Corrosion (MIC), also known as microbial corrosion or biological corrosion, is the deterioration of metals as a result of the metabolic activity of microorganisms. There are several bacteria known to cause microbiologically influenced corrosion of carbon steels, stainless steels, aluminum alloys and copper alloys in waters and soils with a pH range of approximately 4-9 and a temperature range of approximately 10 C. to 50 C. These bacteria can be broadly classified as aerobic (requiring oxygen to become active) or anaerobic (oxygen is toxic to the bacteria). Sulphate reducing bacteria (SRB) is anaerobic and is responsible for most instances of accelerated corrosion damages to ships and offshore steel structures. Iron and manganese oxidizing bacteria are aerobic and are frequently associated with accelerated pitting attacks on stainless steels at welds.
(38) As shown in
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(44) Once the preform 80 is inserted into the bearing block 88, pressure and heat may be applied to further compact the PTFE powder prior to sintering. Sintering the PTFE preform 80 involves heating it to a temperature above the crystalline melting point of about 340 C (621 F) until the individual PTFE particles coalesce and lose their identity. Compaction of the preform 80 may be achieved in a manner similar to that described above (using a hydraulic ram and curved dies). In another approach, compaction may be achieved using hydrostatic forces (using a high pressure fluid to compact the preform 80). Sintering may be achieved using, for example, known electric oven processes. Depending on the application, sintering may take place away from the bearing block 80 using an external die or form and with the shaped PTFE bearing later inserted into the bearing block.
(45) Although the present invention and its advantages have been described in detail, it should be understood that various changes, substitutions and alterations can be made herein without departing from the spirit and scope of the invention as defined by the appended claims. Moreover, the scope of the present application is not intended to be limited to the particular embodiments of the process, machine, manufacture, composition of matter, means, methods and steps described in the specification. As one of ordinary skill in the art will readily appreciate from the disclosure of the present invention, processes, machines, manufacture, compositions of matter, means, methods, or steps, presently existing or later to be developed that perform substantially the same function or achieve substantially the same result as the corresponding embodiments described herein may be utilized according to the present invention. Accordingly, the appended claims are intended to include within their scope such processes, machines, manufacture, compositions of matter, means, methods, or steps.