EP2128391A1 - Start up lubrication facilitation device - Google Patents
Start up lubrication facilitation device Download PDFInfo
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- EP2128391A1 EP2128391A1 EP08157369A EP08157369A EP2128391A1 EP 2128391 A1 EP2128391 A1 EP 2128391A1 EP 08157369 A EP08157369 A EP 08157369A EP 08157369 A EP08157369 A EP 08157369A EP 2128391 A1 EP2128391 A1 EP 2128391A1
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- European Patent Office
- Prior art keywords
- engine
- oil
- lubrication
- rotatable
- space
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- 238000005461 lubrication Methods 0.000 title claims abstract description 61
- 230000014759 maintenance of location Effects 0.000 claims abstract description 44
- 238000000034 method Methods 0.000 claims description 6
- 230000002708 enhancing effect Effects 0.000 claims 1
- 239000003921 oil Substances 0.000 description 108
- 238000002485 combustion reaction Methods 0.000 description 4
- 230000000717 retained effect Effects 0.000 description 3
- 229910000831 Steel Inorganic materials 0.000 description 2
- 230000005484 gravity Effects 0.000 description 2
- 239000000463 material Substances 0.000 description 2
- 239000010959 steel Substances 0.000 description 2
- 239000004677 Nylon Substances 0.000 description 1
- 230000001143 conditioned effect Effects 0.000 description 1
- 239000002283 diesel fuel Substances 0.000 description 1
- 238000010304 firing Methods 0.000 description 1
- 230000001050 lubricating effect Effects 0.000 description 1
- 230000013011 mating Effects 0.000 description 1
- 239000002184 metal Substances 0.000 description 1
- 239000002480 mineral oil Substances 0.000 description 1
- 235000010446 mineral oil Nutrition 0.000 description 1
- 239000000203 mixture Substances 0.000 description 1
- 238000012986 modification Methods 0.000 description 1
- 230000004048 modification Effects 0.000 description 1
- 238000000465 moulding Methods 0.000 description 1
- 229920001778 nylon Polymers 0.000 description 1
- 238000005192 partition Methods 0.000 description 1
- 239000004033 plastic Substances 0.000 description 1
Images
Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01M—LUBRICATING OF MACHINES OR ENGINES IN GENERAL; LUBRICATING INTERNAL COMBUSTION ENGINES; CRANKCASE VENTILATING
- F01M9/00—Lubrication means having pertinent characteristics not provided for in, or of interest apart from, groups F01M1/00 - F01M7/00
- F01M9/12—Non-pressurised lubrication, or non-closed-circuit lubrication, not otherwise provided for
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F01—MACHINES OR ENGINES IN GENERAL; ENGINE PLANTS IN GENERAL; STEAM ENGINES
- F01M—LUBRICATING OF MACHINES OR ENGINES IN GENERAL; LUBRICATING INTERNAL COMBUSTION ENGINES; CRANKCASE VENTILATING
- F01M9/00—Lubrication means having pertinent characteristics not provided for in, or of interest apart from, groups F01M1/00 - F01M7/00
- F01M9/06—Dip or splash lubrication
Definitions
- the present disclosure is directed to a start up lubrication facilitation device, and more particularly, to a start up lubrication facilitation device for an internal combustion engine.
- Internal combustion engines may typically include a pressurized oil feed system to lubricate internal wear surfaces.
- a number of these wear surfaces for example crank shaft bearings, are lubricated directly by oil flowing directly from the feed system.
- Other wear surfaces for example timing gears, are lubricated indirectly in a splash lubrication process using oil flowing from the feed system via other surfaces.
- the teeth of the timing gears in the timing gear case may be lubricated by oil fed by the pressurized oil feed system via a bearing onto the body of one of the timing gears, and that subsequently splashes from the body of that timing gear onto the exposed surfaces of the other gears in the timing gear case.
- splash lubrication is that it is a reliable and cost effective way of providing lubrication. In particular, it is relatively easy to lubricate a large group of wear surfaces simultaneously.
- a disadvantage of splash lubrication is that during start up there may not be sufficient oil available to satisfactorily lubricate the wear surfaces. For example, during cold start of an engine of the series mentioned above, most of the oil may have drained off the timing gears, and it may take several seconds for the oil to be fed to the timing gear case and to arrive at the teeth of the timing gears. This may cause undesired wear of these surfaces.
- the lubrication facilitation device of the present disclosure aims at improving prior systems.
- the device may include a rotatable engine part having an axis of rotation about which it is configured to be rotationally disposed within a splash lubrication space of an engine.
- the rotatable engine part may be provided with a plurality of oil retention pockets. Each oil retention pocket may comprise an enclosure extending from a well portion, the well portion and the aperture being radially interspaced.
- Another aspect of the present disclosure is directed to a method of facilitating start up lubrication of an engine.
- the method may include collecting oil in oil retention pockets of a rotatable engine part upon stop of rotation of the engine part at an engine shut down.
- the method may further include splashing oil from the oil retention pockets upon start of rotation of the rotatable engine part at engine start up.
- Fig. 1 is a schematic perspective view of an exemplary disclosed combustion engine presenting a cover closing a timing gear casing
- Fig. 2 is a schematic perspective view of a timing gear well of the engine of Fig. 1 ;
- Fig. 3 is a schematic cut away perspective view of a detail of a timing gear well having a timing gear with oil retention pockets;
- Fig. 4 is a schematic perspective view of a timing gear shown in Fig. 3 .
- Fig. 1 shows an engine 1.
- the engine 1 may be any type of engine using a lubrication system.
- the engine 1 may for example be an internal combustion engine 1, such as a gasoline or diesel fuel powered engine 1.
- the engine may be a diesel engine.
- the engine 1 may enclose a space 2.
- This space 2 may be defined by various parts of the engine 1, for example internal or external walls, partitions or covers.
- the space 2 may be defined between the timing gear well 3 and timing gear cover 4.
- the timing gear well 3 and the timing gear cover 4 may co-operate to form a timing gear case 5.
- the mating surfaces of the timing gear cover 4 and the timing gear well 3 may interface via a gasket (not shown), and may be clamped onto each other using bolts 6.
- Fig. 2 shows the timing gear case 5 of the exemplary disclosed embodiment with the timing gear cover 4 being removed, such that the gears contained therein are visible.
- two timing gears 13 are shown, of which amongst others, the meshing gear teeth 30 are to be lubricated.
- the space 2 may be arranged for splash lubrication.
- the space 2 may therewith be conditioned for an environment in which lubrication oil may be splashed around in a gaseous environment at substantially atmospheric pressure to lubricate exposed surfaces within the space 2 without significant amounts of oil leaking away from the engine 1.
- the space 2 may include a lubrication oil inlet through which lubrication oil may enter the space 2.
- the lubrication oil inlet may be embodied as a pressurized oil feed line 7.
- a pressurized oil feed line 7 may for example extend through internal walls of the block of the engine 1, and may be provided with oil that is pumped up from a sump 9 using an oil pump (not shown).
- lubrication oil may enter the space 2 from an adjacent space, e.g. an oil reservoir, or from another device.
- the space 2 may include a lubrication oil outlet, for example an oil suction line or drain aperture.
- a lubrication oil outlet may be formed by an outlet opening 8 that connects the space 2 to the sump 9 of the engine 1.
- the space 2 may be constructed without lubrication oil inlet and outlet.
- the space 2 may for example include an oil reservoir and may include internal oil recirculation.
- the lubrication oil may be of any type suitable for lubricating an engine, for example mineral oil, synthetic oil or mixtures thereof of a grade suitable for engine splash lubrication, for example 10W50.
- the engine 1 may include a start-up lubrication facilitation device 10.
- the start-up lubrication facilitation device 10 may comprise a rotatable engine part 11.
- the rotatable engine part 11 may have an axis of rotation 12 about which it may be rotationally disposed relative to engine 1 within the space 2.
- the rotatable engine part 11 may be driven to rotate by other components of the engine 1, for example by the crankhaft of the engine 1.
- the rotatable engine part 1 may be arranged to be driven to rotate upon starting of the engine 1. It may be further configured to also rotate during normal operation of the engine 1.
- the rotatable engine part 11 may be of any shape, and may for example be rotationally symmetrical about the central axis of rotation 12.
- the rotatable engine part 11 may be for example be disc- or wheel shaped. In one embodiment, the rotatable engine part 11 may be a gear wheel. In another embodiment, the rotatable engine part 11 may for example be a sprocket. In the exemplary disclosed embodiment, the rotatable engine 11 part may be a timing gear 13 that is indirectly driven by the crankshaft of the engine 1.
- the timing gear 13 may be bearing mounted on a horizontal stub axle 14 extending from the timing gear well 3 using a bearing 17.
- the timing gear 13 may be axially secured onto the stub axle 14 using a mounting plate 15.
- the mounting plate 15 may be connected to the stub axle 14 via bolts 16.
- lubrication distribution channels may extend from the pressurized oil feed line 7 via the stub axle 14 to the bearing 17 (not shown).
- the rotatable engine part 11 may be provided with a plurality of oil retention pockets 18, the functioning of which shall be discussed more in detail in the next section.
- the oil retention pockets 18 may comprise of an enclosure 19 extending from a well portion 20 to an aperture 21 that is radially spaced away from the aperture 21.
- the aperture 21 may be radially more outwardly disposed than the well portion 20 relative to the central axis of rotation 12.
- the well portion 20 may be disposed radially more outwardly than the aperture 21 relative to the axis of rotation 12.
- the aperture 21 may in one embodiment be partially oriented radially outwardly relative to the central axis of rotation 12.
- the aperture 21 may be oriented substantially radially outwardly.
- the oil retention pockets 18 may be angularly spaced apart along the circumference of the rotatable engine part 11. As shown in the exemplary disclosed embodiment, the oil retention pockets 18 may also be adjoining each other.
- the plurality of oil retention pockets 18 may include more than two oil retention pockets. In particular, the plurality of oil retention pockets 18 may for example include at least five oil retention pockets 18. As shown in the exemplary disclosed embodiment, the oil retention pockets 18 may extend in a generally upright plane.
- the oil retention pockets 18 may be at least partially formed by one or more components that co-operate with the rotatable engine part 11.
- the oil retention pockets 18 may all be formed by a single part that co-operates with the rotatable engine part 11.
- the body 22 of the timing gear 13 may be provided with radially extending ribs 23.
- the oil collection pockets 18 may be defined between portions of the ribs 23 that are interposed between the surface 28 of the body 22 of the timing gear 13 and a surface 24 of a washer 25.
- the washer 25 may for example be made from steel and the surface 24 of the washer 25 may be suitably coated to seal against the ribs 23.
- the rotatable engine part 11 with the oil retention pockets 18 may be formed as a separate structure. Such a structure may then form the lubrication facilitation device 10 on its own. Such a separate structure may for example be disposed on a shaft that is bearing mounted to the engine 1 (not shown). Such a separate structure may for example be configured as a wheel with radially outwardly oriented oil retention pockets 18 that is mounted on the shaft of a turbo fan near its bearings.
- the apertures 21 of the oil retention pockets 18 may connect to an oil collecting surface 24.
- the oil collecting surface 29 may be formed by a portion of the surface 28 of the body 22 of the timing gear 13 adjacent the aperture 21 of the oil retention pocket 18.
- the wall surfaces enclosing the space 2 may be provided with oil guiding structures, such as ridges, ribs, ledges and niches to guide oil splashed on the wall surface towards the oil retention pockets 18.
- the wall surface 26 may for example be provided with an oil guiding structure 27.
- the lubrication facilitation device 10 may be made of any suitable material, for example steel, plastic, nylon or combinations of those materials.
- the lubrication facilitation device 10 may be built up from a metal sprocket wheel of which the body cooperates with a rubber fan shaped molding to form a plurality of oil retention pockets 18.
- the timing gear casing 5 may comprise only one lubrication facilitation device 10. In other embodiments, however, a plurality of lubrication facilitation devices may be used within the space 2 arranged for splash lubrication 2.
- the disclosed lubrication facilitation device 10 may be used in conjunction with any engine 1 having a space 2 arranged for splash lubrication to facilitate lubrication during start-up of the engine 1.
- wear surfaces of the engine 1 may be lubricated by lubrication oil that is splashed around in the space 2 such that a film of oil is deposited on all exposed surfaces within in the space 2.
- the splashing of oil may be induced by one or more rotatable engine parts 10 of which the surfaces cause oil to be splashed around.
- the lubrication oil may be present in a reservoir within the space 2 and/or may be fed to the space 2, for example via a pressurized oil feed system.
- lubrication oil may be fed via the pressurized oil feed line 7 into the space 2 enclosed by the timing gear casing 5.
- the oil may pass via distribution channels (not shown) to the bearing 17 to lubricate the cooperating wear surfaces of the bearing 17 between the stub axle 14 and the timing gear 13, and may continue by flowing onto the body 22 of the timing gear 13.
- the lubrication oil may subsequently be flowing from the body 22 of the timing gear 13 so that it is splashed around in the space 2 so that all internal surfaces that are exposed in the space 2, in particular the wear surfaces such as the meshing gear teeth 30 of the timing gears 13, may be covered by a film of oil.
- oil retention pockets 18 upon stop of rotation of the rotatable engine part 11 at engine shutdown, oil draining from the surface of the engine part is collected in oil retention pockets 18.
- the oil film may drip downwardly from the internal exposed surfaces surrounding the space 2 via outlet opening 8 into the sump 9 of the engine 1.
- Some of this oil may be collected in oil retention pockets 18 of the rotatable engine part 11 that forms a lubrication facilitation device 10.
- oil may be collected in those retention pockets 18 that have a substantially upright orientation.
- the oil flowing downward under the influence of gravity may enter apertures 21 of substantially upward facing oil retention pockets 18 and may flow downward into the enclosure 19, such that it is collected at the well portion 20.
- the aperture 21 may be oriented radially outward to facilitate collection of oil.
- the capacity to collect oil of the oil retention pockets 18 may be enhanced by providing an oil collecting surface 29 that connects to the aperture 21.
- the oil collecting surface 29 may be a part of the surface 28 of the body 22 of the timing gear 13.
- the capacity to collect oil may be further enhanced by oil guide structures 27 that guide oil that travels downward under the influence of gravity along the surfaces 2 of the space towards the oil retention pockets 18.
- it has been illustrated with arrows how a film of oil travelling downward along the well surface 26 of the timing gear well 3 may be guided by guide structure 27 to drip onto the oil collecting surface of the body 22 of the timing gear 13.
- the oil may subsequently flow from the body 22 of the timing gear 13 to the upwardly facing apertures 21 of the oil retention pockets 18. This way, a volume of oil may be retained within the enclosure 19 of the at least partially upwardly orientated oil retention pockets 18.
- oil may be splashed from the oil retention pockets 18.
- the oil may be flung radially outwards of the enclosure 19 via aperture 21 in an embodiment in which the well portion 20 is located radially inward relative to the aperture 21.
- the oil retained in the oil retention pockets may flow radially inwards when the oil retention pocket 18 rotates from an upright orientation towards an inverted orientation.
- the oil flowing from the oil retention pockets 18 may allow for an initial lubrication of the internal exposed surfaces in the space 2.
- the oil retained in the oil retention pockets 18 may be released due to the rotation of the timing gears 13, and may be distributed within the timing gear casing 5.
- the provision of the lubrication facilitation device 10 may facilitate lubrication 2 of internal surfaces arranged within the space 2 arranged for splash lubrication at engine start-up.
- the oil has been drained off the internal surfaces within the space 2, and may now be readily replaced with oil from the retention pockets.
- the wear surfaces therefore may have otherwise have had an unsatisfactory amount of lubrication until oil has arrived from the pressure feed line 7. This earlier availability of even small quantities of oil may thus significantly reduce wear of for example gear teeth and bearings at start-up.
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- Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- General Engineering & Computer Science (AREA)
- Lubrication Of Internal Combustion Engines (AREA)
- General Details Of Gearings (AREA)
Abstract
Description
- The present disclosure is directed to a start up lubrication facilitation device, and more particularly, to a start up lubrication facilitation device for an internal combustion engine.
- Internal combustion engines may typically include a pressurized oil feed system to lubricate internal wear surfaces. A number of these wear surfaces, for example crank shaft bearings, are lubricated directly by oil flowing directly from the feed system. Other wear surfaces, for example timing gears, are lubricated indirectly in a splash lubrication process using oil flowing from the feed system via other surfaces. For example, the teeth of the timing gears in the timing gear case may be lubricated by oil fed by the pressurized oil feed system via a bearing onto the body of one of the timing gears, and that subsequently splashes from the body of that timing gear onto the exposed surfaces of the other gears in the timing gear case.
- Advantageous of splash lubrication is that it is a reliable and cost effective way of providing lubrication. In particular, it is relatively easy to lubricate a large group of wear surfaces simultaneously.
- A disadvantage of splash lubrication is that during start up there may not be sufficient oil available to satisfactorily lubricate the wear surfaces. For example, during cold start of an engine of the series mentioned above, most of the oil may have drained off the timing gears, and it may take several seconds for the oil to be fed to the timing gear case and to arrive at the teeth of the timing gears. This may cause undesired wear of these surfaces.
- The lubrication facilitation device of the present disclosure aims at improving prior systems.
- One aspect of the present disclosure is directed to a lubrication facilitation device for mounting within a splash lubrication space of an engine. The device may include a rotatable engine part having an axis of rotation about which it is configured to be rotationally disposed within a splash lubrication space of an engine. The rotatable engine part may be provided with a plurality of oil retention pockets. Each oil retention pocket may comprise an enclosure extending from a well portion, the well portion and the aperture being radially interspaced.
- Another aspect of the present disclosure is directed to a method of facilitating start up lubrication of an engine. The method may include collecting oil in oil retention pockets of a rotatable engine part upon stop of rotation of the engine part at an engine shut down. The method may further include splashing oil from the oil retention pockets upon start of rotation of the rotatable engine part at engine start up.
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Fig. 1 is a schematic perspective view of an exemplary disclosed combustion engine presenting a cover closing a timing gear casing; -
Fig. 2 is a schematic perspective view of a timing gear well of the engine ofFig. 1 ; -
Fig. 3 is a schematic cut away perspective view of a detail of a timing gear well having a timing gear with oil retention pockets; and -
Fig. 4 is a schematic perspective view of a timing gear shown inFig. 3 . -
Fig. 1 shows anengine 1. Theengine 1 may be any type of engine using a lubrication system. Theengine 1 may for example be aninternal combustion engine 1, such as a gasoline or diesel fuel poweredengine 1. In the exemplary disclosed embodiment, the engine may be a diesel engine. - The
engine 1 may enclose aspace 2. Thisspace 2 may be defined by various parts of theengine 1, for example internal or external walls, partitions or covers. As may be seen inFig. 1 ,Fig. 2 andFig. 3 , in the exemplary enclosed embodiment, thespace 2 may be defined between the timing gear well 3 andtiming gear cover 4. The timing gear well 3 and thetiming gear cover 4 may co-operate to form atiming gear case 5. In the exemplary disclosed embodiment, the mating surfaces of thetiming gear cover 4 and the timing gear well 3 may interface via a gasket (not shown), and may be clamped onto each other usingbolts 6.Fig. 2 shows thetiming gear case 5 of the exemplary disclosed embodiment with thetiming gear cover 4 being removed, such that the gears contained therein are visible. In particular, twotiming gears 13 are shown, of which amongst others, themeshing gear teeth 30 are to be lubricated. - The
space 2 may be arranged for splash lubrication. Thespace 2 may therewith be conditioned for an environment in which lubrication oil may be splashed around in a gaseous environment at substantially atmospheric pressure to lubricate exposed surfaces within thespace 2 without significant amounts of oil leaking away from theengine 1. - The
space 2 may include a lubrication oil inlet through which lubrication oil may enter thespace 2. As shown inFig. 3 , in the exemplary disclosed embodiment, the lubrication oil inlet may be embodied as a pressurizedoil feed line 7. Such a pressurizedoil feed line 7 may for example extend through internal walls of the block of theengine 1, and may be provided with oil that is pumped up from asump 9 using an oil pump (not shown). As an alternative or in addition, lubrication oil may enter thespace 2 from an adjacent space, e.g. an oil reservoir, or from another device. - The
space 2 may include a lubrication oil outlet, for example an oil suction line or drain aperture. In the exemplary disclosed embodiment, a lubrication oil outlet may be formed by an outlet opening 8 that connects thespace 2 to thesump 9 of theengine 1. In an alternative embodiment, thespace 2 may be constructed without lubrication oil inlet and outlet. In such an embodiment, thespace 2 may for example include an oil reservoir and may include internal oil recirculation. The lubrication oil may be of any type suitable for lubricating an engine, for example mineral oil, synthetic oil or mixtures thereof of a grade suitable for engine splash lubrication, for example 10W50. - Referring to
Fig. 3 andFig. 4 , theengine 1 may include a start-uplubrication facilitation device 10. The start-uplubrication facilitation device 10 may comprise a rotatable engine part 11. The rotatable engine part 11 may have an axis ofrotation 12 about which it may be rotationally disposed relative toengine 1 within thespace 2. The rotatable engine part 11 may be driven to rotate by other components of theengine 1, for example by the crankhaft of theengine 1. Therotatable engine part 1 may be arranged to be driven to rotate upon starting of theengine 1. It may be further configured to also rotate during normal operation of theengine 1. The rotatable engine part 11 may be of any shape, and may for example be rotationally symmetrical about the central axis ofrotation 12. The rotatable engine part 11 may be for example be disc- or wheel shaped. In one embodiment, the rotatable engine part 11 may be a gear wheel. In another embodiment, the rotatable engine part 11 may for example be a sprocket. In the exemplary disclosed embodiment, the rotatable engine 11 part may be atiming gear 13 that is indirectly driven by the crankshaft of theengine 1. Thetiming gear 13 may be bearing mounted on ahorizontal stub axle 14 extending from the timing gear well 3 using abearing 17. Thetiming gear 13 may be axially secured onto thestub axle 14 using amounting plate 15. Themounting plate 15 may be connected to thestub axle 14 viabolts 16. In the exemplary disclosed embodiment, lubrication distribution channels may extend from the pressurizedoil feed line 7 via thestub axle 14 to the bearing 17 (not shown). - The rotatable engine part 11 may be provided with a plurality of
oil retention pockets 18, the functioning of which shall be discussed more in detail in the next section. The oil retention pockets 18 may comprise of anenclosure 19 extending from awell portion 20 to an aperture 21 that is radially spaced away from the aperture 21. In one embodiment, the aperture 21 may be radially more outwardly disposed than thewell portion 20 relative to the central axis ofrotation 12. In another embodiment, thewell portion 20 may be disposed radially more outwardly than the aperture 21 relative to the axis ofrotation 12. The aperture 21 may in one embodiment be partially oriented radially outwardly relative to the central axis ofrotation 12. In yet another embodiment, the aperture 21 may be oriented substantially radially outwardly. The oil retention pockets 18 may be angularly spaced apart along the circumference of the rotatable engine part 11. As shown in the exemplary disclosed embodiment, the oil retention pockets 18 may also be adjoining each other. The plurality of oil retention pockets 18 may include more than two oil retention pockets. In particular, the plurality of oil retention pockets 18 may for example include at least five oil retention pockets 18. As shown in the exemplary disclosed embodiment, the oil retention pockets 18 may extend in a generally upright plane. - The oil retention pockets 18 may be at least partially formed by one or more components that co-operate with the rotatable engine part 11. For example, the oil retention pockets 18 may all be formed by a single part that co-operates with the rotatable engine part 11. As shown in the exemplary disclosed embodiment, the
body 22 of thetiming gear 13 may be provided with radially extendingribs 23. The oil collection pockets 18 may be defined between portions of theribs 23 that are interposed between thesurface 28 of thebody 22 of thetiming gear 13 and asurface 24 of awasher 25. Thewasher 25 may for example be made from steel and thesurface 24 of thewasher 25 may be suitably coated to seal against theribs 23. - In an alternative embodiment, the rotatable engine part 11 with the oil retention pockets 18 may be formed as a separate structure. Such a structure may then form the
lubrication facilitation device 10 on its own. Such a separate structure may for example be disposed on a shaft that is bearing mounted to the engine 1 (not shown). Such a separate structure may for example be configured as a wheel with radially outwardly oriented oil retention pockets 18 that is mounted on the shaft of a turbo fan near its bearings. - The apertures 21 of the oil retention pockets 18 may connect to an
oil collecting surface 24. In the exemplary disclosed embodiment, theoil collecting surface 29 may be formed by a portion of thesurface 28 of thebody 22 of thetiming gear 13 adjacent the aperture 21 of theoil retention pocket 18. As an alternative or in addition, the wall surfaces enclosing thespace 2 may be provided with oil guiding structures, such as ridges, ribs, ledges and niches to guide oil splashed on the wall surface towards the oil retention pockets 18. In the exemplary disclosed embodiment, thewall surface 26 may for example be provided with anoil guiding structure 27. - The
lubrication facilitation device 10 may be made of any suitable material, for example steel, plastic, nylon or combinations of those materials. For example thelubrication facilitation device 10 may be built up from a metal sprocket wheel of which the body cooperates with a rubber fan shaped molding to form a plurality of oil retention pockets 18. In the exemplary disclosed embodiment, thetiming gear casing 5 may comprise only onelubrication facilitation device 10. In other embodiments, however, a plurality of lubrication facilitation devices may be used within thespace 2 arranged forsplash lubrication 2. - The disclosed
lubrication facilitation device 10 may be used in conjunction with anyengine 1 having aspace 2 arranged for splash lubrication to facilitate lubrication during start-up of theengine 1. During normal operation of theengine 1, wear surfaces of theengine 1 may be lubricated by lubrication oil that is splashed around in thespace 2 such that a film of oil is deposited on all exposed surfaces within in thespace 2. The splashing of oil may be induced by one or morerotatable engine parts 10 of which the surfaces cause oil to be splashed around. The lubrication oil may be present in a reservoir within thespace 2 and/or may be fed to thespace 2, for example via a pressurized oil feed system. - In the exemplary disclosed embodiment, lubrication oil may be fed via the pressurized
oil feed line 7 into thespace 2 enclosed by thetiming gear casing 5. The oil may pass via distribution channels (not shown) to thebearing 17 to lubricate the cooperating wear surfaces of thebearing 17 between thestub axle 14 and thetiming gear 13, and may continue by flowing onto thebody 22 of thetiming gear 13. The lubrication oil may subsequently be flowing from thebody 22 of thetiming gear 13 so that it is splashed around in thespace 2 so that all internal surfaces that are exposed in thespace 2, in particular the wear surfaces such as themeshing gear teeth 30 of the timing gears 13, may be covered by a film of oil. - In accordance with the disclosure, upon stop of rotation of the rotatable engine part 11 at engine shutdown, oil draining from the surface of the engine part is collected in oil retention pockets 18. In the exemplary disclosed embodiment, the oil film may drip downwardly from the internal exposed surfaces surrounding the
space 2 via outlet opening 8 into thesump 9 of theengine 1. Some of this oil may be collected in oil retention pockets 18 of the rotatable engine part 11 that forms alubrication facilitation device 10. In particular, oil may be collected in those retention pockets 18 that have a substantially upright orientation. The oil flowing downward under the influence of gravity may enter apertures 21 of substantially upward facing oil retention pockets 18 and may flow downward into theenclosure 19, such that it is collected at thewell portion 20. The aperture 21 may be oriented radially outward to facilitate collection of oil. By providing a plurality of oil retention pockets 18, for example at least 5 pockets, it may be achieved that the number of pockets having a substantially upright orientation may be relatively large at any angular orientation of the lubrication facilitation device. - The capacity to collect oil of the oil retention pockets 18 may be enhanced by providing an
oil collecting surface 29 that connects to the aperture 21. In the exemplary disclosed embodiment, theoil collecting surface 29 may be a part of thesurface 28 of thebody 22 of thetiming gear 13. The capacity to collect oil may be further enhanced byoil guide structures 27 that guide oil that travels downward under the influence of gravity along thesurfaces 2 of the space towards the oil retention pockets 18. In the exemplary disclosed embodiment shown inFig. 3 , it has been illustrated with arrows how a film of oil travelling downward along thewell surface 26 of the timing gear well 3 may be guided byguide structure 27 to drip onto the oil collecting surface of thebody 22 of thetiming gear 13. The oil may subsequently flow from thebody 22 of thetiming gear 13 to the upwardly facing apertures 21 of the oil retention pockets 18. This way, a volume of oil may be retained within theenclosure 19 of the at least partially upwardly orientated oil retention pockets 18. - Upon start of rotation of the rotatable engine part 11 at engine start-up, oil may be splashed from the oil retention pockets 18. In particular, the oil may be flung radially outwards of the
enclosure 19 via aperture 21 in an embodiment in which thewell portion 20 is located radially inward relative to the aperture 21. In an embodiment in which the well portion is located radially outward relative to the aperture, the oil retained in the oil retention pockets may flow radially inwards when theoil retention pocket 18 rotates from an upright orientation towards an inverted orientation. The oil flowing from the oil retention pockets 18 may allow for an initial lubrication of the internal exposed surfaces in thespace 2. In the exemplary disclosed embodiment, when theengine 1 is cranked at start-up, even before firing of theengine 1, the oil retained in the oil retention pockets 18 may be released due to the rotation of the timing gears 13, and may be distributed within thetiming gear casing 5. - The provision of the
lubrication facilitation device 10 may facilitatelubrication 2 of internal surfaces arranged within thespace 2 arranged for splash lubrication at engine start-up. In particular when the engine is cold started, the oil has been drained off the internal surfaces within thespace 2, and may now be readily replaced with oil from the retention pockets. In the exemplary disclosed embodiment, at engine start up it may otherwise have taken several seconds for the oil to have arrived via thepressurized feed line 7, and the wear surfaces therefore may have otherwise have had an unsatisfactory amount of lubrication until oil has arrived from thepressure feed line 7. This earlier availability of even small quantities of oil may thus significantly reduce wear of for example gear teeth and bearings at start-up. - It will be apparent to those skilled in the art that various modifications and variations can be made to the lubrication facilitation device of the present disclosure without departing from the scope of the disclosure. Other embodiments will be apparent to those skilled in the art from consideration of the specification and practice of the lubrication facilitation device disclosed herein. It is intended that the specification and examples be considered as exemplary only, with a true scope of the invention being indicated by the following claims and their equivalents.
Claims (16)
- A lubrication facilitation device for mounting within a splash lubrication space of an engine, the device comprising a rotatable engine part having an axis of rotation about which it is configured to be rotationally disposed within a splash lubrication space of an engine, the rotatable engine part being provided with a plurality of oil retention pockets, each oil retention pocket comprising an enclosure extending from a well portion to an aperture that is radially spaced away therefrom.
- The device according to claim 1, in which the oil retention pockets are angularly spaced apart along the circumference of the rotatable engine part.
- The device according to claim 1 or 2, in which the aperture connects to an oil collecting surface of the rotatable engine part.
- The device according to any of the preceding claims, in which the rotatable engine part is a gear wheel.
- The device according to claim 4, in which the gear wheel is a timing gear wheel.
- The device according to any of claims 1-3, in which the rotatable engine part is a sprocket wheel.
- An engine having a space arranged for splash lubrication, which space encloses a lubrication device according to any of the preceding claims that is rotatably disposed about its central axis relative to the engine.
- The engine according to claim 7, in which the central axis of rotation is horizontally disposed.
- The engine according to claims 7 or 8, in which the lubrication pockets extend in a generally upright plane.
- The engine according to any of claims 7-9, in which the space that is arranged for splash lubrication is a timing gear case.
- The engine according to claim 10, in which the rotationally disposed engine part includes a timing gear.
- The engine according to any of claims 7-11, in which the rotatable engine part is bearing mounted on a stub axle of the engine.
- The engine according to any of claims 7-11, in which the rotatable engine part is disposed on a shaft that is bearing mounted to the engine.
- The engine according to any of claims 7-13, further including a pressurized oil feed system.
- A method of facilitating start up lubrication of an engine, comprising:- collecting oil in oil retention pockets of a rotatable engine part upon stop of rotation of the engine part at engine shut down;- splashing oil from said oil retention pockets upon start of rotation of the rotatable engine part at engine start up.
- The method according to claim 15, further comprising subsequently enhancing lubrication by pressure feeding oil.
Priority Applications (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP08157369A EP2128391A1 (en) | 2008-05-30 | 2008-05-30 | Start up lubrication facilitation device |
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP08157369A EP2128391A1 (en) | 2008-05-30 | 2008-05-30 | Start up lubrication facilitation device |
Publications (1)
| Publication Number | Publication Date |
|---|---|
| EP2128391A1 true EP2128391A1 (en) | 2009-12-02 |
Family
ID=40097434
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP08157369A Withdrawn EP2128391A1 (en) | 2008-05-30 | 2008-05-30 | Start up lubrication facilitation device |
Country Status (1)
| Country | Link |
|---|---|
| EP (1) | EP2128391A1 (en) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113090737A (en) * | 2021-04-30 | 2021-07-09 | 郑州轻工业大学 | Gear box with gear wear degree detection assembly and working method thereof |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3767013A (en) * | 1971-08-16 | 1973-10-23 | Pennwalt Corp | Start-up lubricator |
| US4693133A (en) * | 1982-06-18 | 1987-09-15 | Honda Giken Kogyo Kabushiki Kaisha | Noise reduction in gear transmission |
| US5474041A (en) * | 1994-12-28 | 1995-12-12 | Cummins Engine Company, Inc. | Engine lubrication system with decreased power draw |
| EP0839992A1 (en) * | 1996-10-29 | 1998-05-06 | Honda Giken Kogyo Kabushiki Kaisha | Valve mechanism lubricator of engine |
| US7299792B1 (en) * | 2000-09-22 | 2007-11-27 | Accessible Technologies, Inc. | Centrifugal compressor with improved lubrication system for gear-type transmission |
-
2008
- 2008-05-30 EP EP08157369A patent/EP2128391A1/en not_active Withdrawn
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3767013A (en) * | 1971-08-16 | 1973-10-23 | Pennwalt Corp | Start-up lubricator |
| US4693133A (en) * | 1982-06-18 | 1987-09-15 | Honda Giken Kogyo Kabushiki Kaisha | Noise reduction in gear transmission |
| US5474041A (en) * | 1994-12-28 | 1995-12-12 | Cummins Engine Company, Inc. | Engine lubrication system with decreased power draw |
| EP0839992A1 (en) * | 1996-10-29 | 1998-05-06 | Honda Giken Kogyo Kabushiki Kaisha | Valve mechanism lubricator of engine |
| US7299792B1 (en) * | 2000-09-22 | 2007-11-27 | Accessible Technologies, Inc. | Centrifugal compressor with improved lubrication system for gear-type transmission |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| CN113090737A (en) * | 2021-04-30 | 2021-07-09 | 郑州轻工业大学 | Gear box with gear wear degree detection assembly and working method thereof |
| CN113090737B (en) * | 2021-04-30 | 2022-02-11 | 郑州轻工业大学 | A gear box with a gear wear degree detection component and its working method |
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