Two-piece piston assembly with skirt having pin bore oil ducts

Information

  • Patent Grant
  • 6494170
  • Patent Number
    6,494,170
  • Date Filed
    Friday, December 1, 2000
    23 years ago
  • Date Issued
    Tuesday, December 17, 2002
    21 years ago
Abstract
A duct from near the top of the skirt of a two-piece piston carries lubricant to the skirt pin bore, on each side of the skirt, and lubricates the pin joint. The skirt is provided with a lubricant passage, such as from a shaker tray, to the pin bore on each side of the pin joint of the skirt, piston crown struts, and wrist pin on which a piston connecting rod is joined. Fluid sprayed against the crown descends onto the skirt and some passes through the above-mentioned lubricant ducts or passages for direct, continuous lubrication of the pin joint.
Description




TECHNICAL FIELD




This invention relates generally to engine pistons and, more particularly, to two-piece pistons with oil cooling of the crown portion.




BACKGROUND ART




Pistons for middle and large sized diesel engines, such as those having a displacement of 5 liters or more, have had considerable attention to achieve increased performance. Two-piece designs for piston assemblies have been widely adopted for such engines.




Two-piece pistons, sometimes referred to as articulated pistons, have a crown that has an upper end surface that forms part of an engine's combustion chamber, and an outer lateral surface carrying the piston rings that run within a cylinder of the engine. The crown is typically of a high strength material, such as machined forged steel, to withstand the pressure and temperature encountered in operation.




Two-piece pistons also include a skirt below the crown that is a separate member typically of a lower strength material then the crown, but one that is lighter and more heat conductive, such as aluminum. The skirt is typically cylindrical and open, or hollow in the center, so an oil coolant can be sprayed up through the skirt against the crown. The skirt helps contain the oil to assist in heat dissipation from the piston. (The sprayed oil is also what provides lubrication for motion between the piston rings and the cylinder wall.)




For example, in U.S. Pat. No. 4,056,044 issued to Kammon, Nov. 1, 1977, a two-piece piston design is disclosed that includes a main body, or crown, and a skirt that are connected through pin bores by a wrist pin to which a connecting rod is attached. A cooling oil is directed against the interior of the crown. An annular groove in the end of the skirt that faces the crown receives at least some of the cooling oil that has drained from the crown and, due to the piston's motion, splashes it out for further cooling and lubricating action. Such an annular groove in a skirt of a two-piece piston is sometimes referred to in the art as a “shaker tray”.




Other examples of two-piece pistons include those in U.S. Pat. No. Re. 34,139 issued to Cooper et al., Dec. 8, 1992, which includes further aspects of the form of the crown surface that receives the sprayed oil, and U.S. Pat. No. 4,986,167 issued to Stratton et al., Jan. 22, 1991, that includes a baffle plate to help trap coolant in an annular cooling recess, or cooling gallery, of the crown.




In the prior known two-piece pistons, the pin joint with the wrist pin connecting the crown portion and the skirt, and also joined to the connecting rod, is lubricated merely by random splashing of the jet sprayed oil or else, in engines large enough in size (such as 50 L. or more displacement), a continuous supply of oil to the pin joint through the connecting rod; for example, see above-mentioned U.S. Pat. No. 4,056,044. Random splashing provides lubrication that is uncertain and may be discontinuous. Supplying oil continuously through a passage in the connecting rod is not a very cost effective design for mid-sized engines in a range of, for example, about 5 to about 30 L. displacement.




Lack of cost effective lubrication results in limitations on engine performance and life due to component wear. There is a continuing interest in increasing the specific power (power per unit of displacement) of engines. That tends to make cylinder pressures higher and increase the loading on the piston pin joint which would have the adverse effect of reducing component life.




The present invention is directed to overcoming one or more of the problems or disadvantages associated with the prior art.




DISCLOSURE OF THE INVENTION




The present invention is directed to two-piece piston assemblies with a reliable and cost effective way to provide continuous lubrication to the pin joint of pistons for a wide variety of engine sizes.




The piston assembly includes ducts or passages in the skirt near the top of the skirt, such as from the shaker trays, to the pin bores on each side of the skirt. Some oil, or other fluid coolant and lubricant, that is used to cool the piston crown falls within the ducts and is carried through the ducts to the pin joint of the union of the skirt, crown, and wrist pin for the connecting rod. The invention also increases the effective useful life of engines by reducing wear of critical components such as the piston crown and skirt, the wrist pin, and the connecting rod.




The invention retains the benefits of prior two-piece pistons and their fluid cooling techniques and provides a way to raise the specific power of engines, including diesel engines, for example, in the size range of about 5 to about 30 L. displacement, without requiring a system with oil supplied through a passage in the connecting rod.











BRIEF DESCRIPTION OF THE DRAWINGS





FIG. 1

is a vertical, central sectional view, partly broken away, of a two-piece piston assembly in accordance with an embodiment of the invention, in an engine cylinder;





FIG. 2

is a vertical sectional view of a skirt of a two-piece piston assembly in accordance with an embodiment of the invention, such sectional view being taken on a vertical plane through the longitudinal wall of the skirt intersecting a pin bore; and





FIG. 3

is a perspective view of a skirt of a two-piece piston assembly in accordance with an embodiment of the present invention.











BEST MODE FOR CARRYING OUT THE INVENTION





FIG. 1

shows a two-piece piston assembly


10


in a cylinder


12


of an engine, typically a diesel engine with a number of cylinders each equipped with such a piston. Piston assembly


10


includes a main piston body, or crown,


20


and a skirt


30


each of which will be described further particularly with respect to how lubrication is provided to a pin joint at which each of parts


20


and


30


are located on a wrist pin


40


that also has a connecting rod


50


attached for motion transferred to or compelled by the engine's crankshaft (not shown). Within a lower part of cylinder


12


there is a nozzle


60


that sprays a fluid coolant and lubricant throughout the piston assembly


10


.




The general arrangement of crown


20


, skirt


30


, wrist pin


40


, connecting rod


50


and nozzle


60


is generally consistent with known two-piece piston designs which may be modified in certain respects to practice the invention. The expression “two-piece piston assembly” as used herein generally refers to a piston including a two-piece piston and its related wrist pin, connecting rod and coolant nozzle, unless the context indicates otherwise.




The example crown


20


is generally one machined from a steel forging to form a cylindrical outer surface


21


on which piston rings


22


are located that run against the inner surface of the cylinder


12


. The crown's upper surface


23


faces and forms part of the combustion chamber of the cylinder


12


and includes a depression


24


. The underside of the crown


20


has an annular recess, or cooling gallery,


25


that may extend around substantially all of the crown underside. The cooling gallery


25


, and also a central depression


26


, help maximize heat transfer. They receive sprayed oil from nozzle


60


that removes heat from the crown


20


produced both by the combustion against surface


23


, including depression


24


, and the sliding of the piston rings


22


against the cylinder


12


.




The crown


20


also includes struts or bosses


27


extending down from the main part with the features described above. In the view of

FIG. 1

a strut


27


at the far side of the piston


10


is shown. An additional strut


27


is symmetrically arranged on the near side of the piston


10


which is not illustrated in this sectional view. The crown struts


27


extend within the generally cylindrical skirt


30


and have a pin bore


28


through which the wrist pin


40


extends.




The crown


20


may have any of a variety of particular configurations and may be like crowns of prior two-piece pistons.




The skirt


30


of the piston


10


is, however, significantly modified from past practice. In

FIG. 1

the skirt


30


has a generally vertical cylindrical wall


31


the outer surface of which is spaced from the cylinder


12


, substantially like the crown surface


21


(other than rings


22


). As in the prior designs referred to above, the upper part of the skirt


30


has features that have significant relation to the underside of the crown


20


. A part of the upper periphery or edge


32


includes one or more annular grooves or shaker trays


33


. (More accurately scaled illustration of example shaker trays


33


is in

FIG. 3.

) Shaker trays


33


perform the function they have in prior designs of receiving at least some of the oil that descends from the crown


20


, particularly cooling gallery


25


, and helping heat transfer by the repetitive splashing and shaking the coolant gets in the shaker trays


33


during the motion of the piston


10


. The configuration of the trays


33


helps to retain the oil, temporarily, before it eventually drains out the piston, so that heat transfer to the oil is maximized.




The skirt


30


has pin bores


34


(not shown clearly in

FIG. 1

but like those shown in

FIGS. 2 and 3

at


134


and


234


, respectively) located outside and in alignment with the pin bores


28


of the crown struts


27


. Wrist pin


40


, attached to the connecting rod


50


, extends through the pin bores of the crown


20


and the skirt


30


. The wrist pin joint with the respective pin bores of the crown and skirt is referred to generally by reference numeral


70


. The wrist pin joint


70


is journalled, or positioned, for relative motion within the pin bores of the crown struts


27


and the skirt


30


, substantially as in a journal bearing.




In

FIG. 1

, a shaker tray


33


′ over a pin bore on the far side of the skirt communicates directly by a duct


35


through the skirt wall to the pin joint


70


. Some of the fluid in the shaker tray


33


′ passes through the duct


35


for continuous positive lubrication, and cooling, of the pin joint


70


. (A like configuration of a shaker tray and lube duct is provided on the near side of the skirt


30


as well; see

FIG. 3

for example.

FIG. 2

illustrates further details in a sectional view through a pin bore.)




The ability to continuously lubricate the pin joint


70


through duct


35


permits higher specific power and lower wear for a longer life from the piston assembly and, by the present invention, that can be accomplished without the expense incurred by having oil fed through a special passage in the connecting rod.




As shown in the example of

FIG. 1

, duct


35


extends to the pin joint


70


, including the pin bore of skirt


30


, pin bore, but not beyond. As in the past, the fluid (oil) sprayed from nozzle


60


eventually descends down to the engine's crankcase (not shown). In the

FIG. 1

embodiment, oil through duct


35


to the pin joint


70


will lubricate the journalled parts at the crown and skirt pin bores. Sprayed oil from nozzle


60


, not relied on as the sole means for lubricating the pin joint


70


, still occurs and adds to lubricating all the journalled parts.




Elements of

FIGS. 2 and 3

generally have reference numbers with two last digits like the reference numbers of the corresponding elements of FIG.


1


.





FIG. 2

shows a view of a skirt


130


that includes features that are part of the inventive combination. This sectional view is taken through a skirt wall including a skirt pin bore


134


. Among the features shown are a shaker tray


133


, in one corner in this example, and a duct


135


between the shaker tray


133


, in one corner in this example, to the pin bore


134


. In contrast to

FIG. 1

,

FIG. 2

shows an alternative in which duct


135


extends not only to the pin bore


134


, but past the pin bore to the lower edge of the skirt. Dashed line


135


′ indicates the approximate location of the termination of the duct


35


as shown in FIG.


1


. While either arrangement is useful, it is presently believed a closed-end arrangement as in

FIG. 1

is generally preferred to maximize the lubrication at the pin joint.





FIG. 3

shows a skirt


230


for use in the invention. In this example, the skirt


230


has four shaker trays


233




a


,


233




b


,


233




c


, and


233




d


. Two of the shaker trays


233




a


and


233




b


are over respective skirt pin bores


234


. The near left shaker tray


233




a


is shown with a duct


235


extending from the shaker tray


233




a


to the pin bore


234


. The opposite shaker tray


233




b


has a like duct to its proximate pin bore


234


, at the right edge of the shaker tray and pin bore, not visible in this view.




The skirt


230


of

FIG. 3

includes cutbacks or cutouts (notch regions)


236


in the walls of the shaker trays


233




c


and


233




d


and between the trays


233




c


and


233




a


and between trays


233




d


and


233




b


. The regions


236


of the skirt


230


are related to the configuration of the crown of the piston and provide sufficient clearance during engine operation for an oil spray nozzle (e.g.,


60


and

FIG. 1

) to reach a crown cooling gallery (


25


in FIG.


1


). (Regions similar to regions


236


of

FIG. 3

are not shown in

FIG. 1

for simplicity of illustration but would be present to enable the oil to cool the crown.)





FIG. 3

also shows an oil jet notch


237


in the lower right edge of the skirt


230


for location of an oil jet similar to nozzle


60


of

FIG. 1






The illustrated embodiments of

FIGS. 1

,


2


, and


3


all include ducts


35


,


135


and


235


that extend from shaker trays in the top of the skirt. That helps ensures continuity of the supply of oil to the pin bore. More generally, the upper opening of the ducts carrying lubricant to the pin bores may be at a location in the upper part of the skirt, not necessarily within shaker trays, where coolant sprayed from nozzle


60


will be received. Further, the examples shown have just one duct


35


,


135


,


235


for oil to each pin bore. However, additional pin bore oil ducts may be included if desired.




INDUSTRIAL APPLICABILITY




The invention provides a way to improve the pin joint lubrication of two-piece engine pistons that is reliable and also relatively easy and economical to implement compared to prior techniques.




While the invention may be used in a wide variety of engines, it is particularly well suited for mid-sized diesel engines such as from about 6 L. to 30 L. displacement that have previously not had direct pin joint lubrication. Engines equipped with pistons according to the invention, having a lubricant duct from skirt shaker trays to pin bores, can be operated with increased specific power compared with a similar engine without direct pin joint lubrication. Also, pin joint wear is reduced to provide a longer life for an engine.




Other aspects and features of the present invention can be obtained from a study of the drawings, the disclosure, and the appended claims.



Claims
  • 1. A fluid cooled, two-piece, piston assembly for use in an engine and comprising:a piston crown and a skirt each having a pair of oppositely disposed pin bores accommodating a wrist pin pivotally located therein; a nozzle directed to spray a coolant fluid upward throughout the interior of the skirt to the crown; and a number of fluid passages within the skirt each extending from near the top of the skirt adjacent the crown to one of the skirt pin bores for direct lubrication of the wrist pin.
  • 2. The piston assembly of claim 1 including:a connecting rod attached to the wrist pin.
  • 3. The piston assembly of claim 2 wherein:the fluid passages in the skirt extend to the skirt pin bores from respective shaker trays at the top of the skirt adjacent the crown that receive fluid descending from the crown.
  • 4. The piston assembly of claim 3 including:a cooling recess in the surface of the crown adjacent the shaker trays having the fluid passages extending therefrom.
  • 5. A fluid cooled, two-piece piston assembly for use in an engine and comprising:a crown having an upper surface and a downwardly facing cooling recess and also having oppositely disposed struts that downwardly extend and each include a pin bore; a skirt located with the pin bore struts of the crown extending therein and having a pair of oppositely located skirt pin bores that are aligned with the strut pin bores; the skirt also having an upper end surface facing parts of the cooling recess of the crown and with cutout regions between adjacent shaker trays that allow a fluid coolant to be sprayed upwardly against the crown cooling recess; and the skirt also having a duct from each of at least two upper locations proximate the cooling recess of the crown that extends to a respective pin bore to carry some of the fluid coolant to lubricate the pin bores.
  • 6. The piston assembly of claim 5 wherein:the downwardly facing cooling recess of the crown has an annular configuration; two shaker trays of the skirt are located above the pin bores and two others respectively between the two that are above the pin bores; and the ducts to the pin bores extend from within each of the two shaker trays located above the pin bores.
  • 7. The piston assembly of claim 5 including:a wrist pin extending through the pin bores of the struts and the skirt, the wrist pin being journalled for reciprocating motion with lubrication from the fluid passing through the ducts in the skirt.
  • 8. The piston assembly of claim 5 wherein:the crown consists essentially of steel and the skirt consists essentially of aluminum.
  • 9. The piston assembly of claim 7 wherein:the lubricant carried by ducts in the skirt passes out through the pin bores around the journalled wrist pin.
  • 10. A two-piece engine piston assembly with a fluid cooling and lubricating arrangement comprising:a crown, a skirt, and a spray jet for directing a fluid coolant against the underside of the crown; the crown having downwardly extending struts with opposing pin bores, the skirt encircling the struts of the crown and having opposing pin bores aligned with those of the struts; a wrist pin, for a connecting rod, journalled within the pin bores of the skirt and struts; the skirt having a generally cylindrical shape with an upper edge facing a peripheral part of a lower surface of the crown, the skirt upper edge including a plurality of shaker trays that receive fluid from the crown surface and splash back fluid to further cool the crown during reciprocating motion of the assembly, and the skirt further has a pair of the shaker trays that each communicate with a respective duct to supply fluid to one of the skirt pin bores as lubricant to the wrist pin.
  • 11. The piston assembly of claim 10 where:the crown and the skirt are separate elements that are unjoined apart from the wrist pin journalled in the respective pin bores.
  • 12. The piston assembly of claim 11 where:the spray jet introduces to the assembly the sole fluid for cooling and lubricating.
  • 13. The piston assembly of claim 12 where:the sprayed fluid of the spray jet impinges on the wrist pin within the pin bores and contributes to their lubrication in addition to lubrication by fluid supplied from the shaker trays.
  • 14. The piston assembly of claim 13 where:the crown and the skirt are of different composition to provide the crown with greater strength and the skirt with lighter weight and more heat conductivity.
  • 15. The piston assembly of claim 14 where:the crown is of steel and the skirt is of aluminum.
US Referenced Citations (29)
Number Name Date Kind
34139 Copper et al. Dec 1862 A
2372050 Barraja-Frauenfelder Mar 1945 A
2687931 Flynn, Jr. Aug 1954 A
2865348 Kramer et al. Dec 1958 A
3070079 Seifert Dec 1962 A
4056044 Kamman et al. Nov 1977 A
4206726 Johnson, Jr. et al. Jun 1980 A
4253429 Galli Mar 1981 A
4270494 Garter et al. Jun 1981 A
4286505 Amdall Sep 1981 A
4331107 Bruni May 1982 A
4506632 Kanda et al. Mar 1985 A
4508065 Suchdev Apr 1985 A
4517930 Nakano et al. May 1985 A
4530312 Kanda et al. Jul 1985 A
4847964 Adams et al. Jul 1989 A
4867119 Cooper et al. Sep 1989 A
4941440 Weber et al. Jul 1990 A
4945864 Solomon et al. Aug 1990 A
4986167 Stratton et al. Jan 1991 A
5052280 Kopf et al. Oct 1991 A
RE34139 Cooper et al. Dec 1992 E
5279268 Brink et al. Jan 1994 A
5289758 Berlinger Mar 1994 A
5307732 Berlinger May 1994 A
5730090 Kling et al. Mar 1998 A
5845611 Schmidt et al. Dec 1998 A
5890416 Thieme et al. Apr 1999 A
6003479 Evans Dec 1999 A
Foreign Referenced Citations (11)
Number Date Country
197137 Apr 1958 AU
339430 Aug 1959 DE
3600-749 Jul 1987 DE
3600-750 Jul 1987 DE
520536 Dec 1992 EP
523625 Jan 1993 EP
917.647 Jan 1947 FR
1.283.109 Dec 1962 FR
10314 Oct 1912 GB
489103 Jan 1954 IT
1451-311 Jan 1989 SU