Piston scraping ring with power groove
10487779 ยท 2019-11-26
Assignee
Inventors
Cpc classification
F02F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F2001/006
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F02F1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F02F1/18
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A device and method for preventing and removing piston deposit build-up on a piston cylinder assembly of an engine, including a diesel engine, is disclosed. A cylinder having an inner sleeve for receiving a piston, has a piston scraping ring positioned on the cylinder sleeve. The piston scraping ring includes an inner surface, and has a curved or hook shaped feature on its inner surface. The curved or hook shaped feature, named the power groove for the purposes of this application, allows for reduced wear between the piston rings and the cylinder sleeve by reducing the pressure on the piston rings by expanding and reversing the flow of combustion gases. Additionally, this reversal of the combustion gases results in a decrease in blow-by gases passing between the piston rings and cylinder sleeve thereby improving sealing between the piston and the cylinder.
Claims
1. A cylinder piston assembly for use in an internal combustion engine, the assembly comprising: a cylinder having an inner sleeve for receiving a piston with one or more piston rings; a ring positioned and supported on the inner sleeve of the cylinder, the ring including an inner surface and an opposing outer surface; the piston and cylinder defining combustion wave generating region above the piston in which combustion events occurs generating products of combustion, a lower portion below the piston toward which the piston is exerted by the combustion events, and a gap between the ring and the piston through which the products of combustion may migrate downstream from the combustion wave generating region past the ring; and a teardrop shaped groove formed in the inner surface of the ring; wherein the teardrop shaped groove has a first entry point at a first location, a second entry point at a second location downstream of the first location; and has a portion that extends below the second entry point in the downstream direction.
2. The cylinder piston assembly of claim 1, wherein the products of combustion consist of combustion gases, particles and fluid.
3. The cylinder piston assembly of claim 1, wherein the teardrop shaped groove is approximately midway along a circumference of the ring.
4. The cylinder piston assembly of claim 1, wherein the teardrop shaped groove is curved against the direction of the products of combustion.
5. The cylinder piston assembly of claim 1, wherein the ring is a scraping ring with the inner surface of the scraping ring additionally scraping off deposits on a top land of the piston.
6. The cylinder piston assembly of claim 1, wherein the curve of the teardrop shape against the direction of the products of combustion reduces the pressure on one or more piston rings and improves the sealing capacity between the one or more piston rings and the cylinder sleeve.
7. A pressure control and sealing device for use in a cylinder/piston assembly of an internal combustion engine, the device comprising: A cylinder having an inner sleeve for receiving a piston with a piston ring; the piston and cylinder defining a combustion wave generating region above the piston in which the combustion events occur generating products of combustion, a ring positioned on an interior sleeve of a cylinder, the ring including an inner surface facing a piston; and a teardrop shaped groove applied to the inner surface of the ring; the teardrop shaped groove curved so as to redirect at least a portion of products of combustion towards the combustion wave generating region away from the piston ring.
8. A method for preventing build-up and reducing pressure and wear on a piston assembly, the method comprising the steps of: providing a piston with one or more piston rings within a cylinder sleeve of a cylinder; providing a piston scraping ring having a teardrop shaped groove with a first entry point, a second entry point vertically lower than the first entry point, and a recess having a curve point vertically lower than the second entry point on an inner surface of the piston scraping ring within an inner diameter of the cylinder sleeve opposing the piston; and receiving a first oncoming compression pressure wave into the teardrop shaped groove with the recess such that the first oncoming compression pressure wave is deflected back instead of flowing through one or more gaps between the cylinder and the piston assembly.
9. The method of claim 8, wherein the method further improves sealing ability between the one or more piston rings and the cylinder sleeve by reducing the flow of blow-by gases.
10. The method of claim 8, wherein the first oncoming compression pressure wave deflects a second oncoming pressure wave after the first oncoming wave is deflected by the teardrop shaped groove.
11. The cylinder piston assembly of claim 4 wherein the portion of the teardrop shape curve extending between the portion below the second entry point and the second entry point is curved against the direction of the products of combustion.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) Referring to
(5) As shown in
(6) Positioned above the top piston compression ring 30, the cylinder liner or sleeve 25 is provided with a piston scraping ring 32. The piston scraping ring 32 functions to remove carbon deposit, carbon residue and any other combustion by-product deposits that may collect or form at the upper portion or top land of the piston 22 during operation of the engine. The piston scraping ring 32 of the present disclosure includes a power groove 34, which is a curved or hook shaped feature applied to an inner surface 44 of the piston scraping ring 32. While in this embodiment the power groove 34 is applied to the piston scraping ring 32, any other piston ring such as a compression ring 30 or an oil control ring 42, etc. may be used.
(7) The power groove 34, as shown in
(8) Upon operation of the installed piston 22 within the cylinder sleeve 25, the power groove 34 will cause the combustion pressure wave 40 of a combustion event to expand and reverse direction. When the oncoming combustion pressure wave 40 consisting of combustion gases and fluid after a combustion event makes contact with the power groove 34, the resulting impact slows down the pressure wave through expansion and, enabled by the curved shape of the power groove 34, reverses the combustion pressure wave 40. This reversed combustion pressure wave 40 then acts by expanding and reversing any further oncoming pressure waves from combustion thereby reducing the pressure experienced by the one or more annular piston compression rings 30 and the oil control ring 42. The reduction in pressure experienced by the piston rings will result in less blow-by gases past the piston rings and a reduction in the wear between the piston rings and the cylinder sleeve 25. Since there is a reduction in the blow-by gases by reduction of pressure, the power groove 34 improves the sealing capability of the piston rings. Thus, the power groove 34 improves both efficiency and durability of the engine.
(9) A method for preventing piston deposit build-up in a piston cylinder assembly for an engine is described. The method also provides for an increase in the efficiency and durability of an engine by reducing the pressure and increasing sealing capacity between the piston rings and cylinder sleeve.
(10) The present method includes providing a cylinder 24 having a cylinder sleeve 25, and seating a piston 22 within the cylinder sleeve 25. A piston scraping ring 32 having a power groove 34 disposed on the inner surface 44 thereof is positioned on the cylinder sleeve 25 of the cylinder 24, such that the power groove 34 faces the piston 22. While in this embodiment the power groove 34 is applied to the piston scraping ring 32, any other piston ring such as a compression ring 30 or an oil control ring 42, etc. may be used. Through operation of the piston 22 within the cylinder sleeve 25, the power groove 34 will expand any oncoming pressure waves consisting of combustion gases 40 upon impact with the combustion gases 40. Additionally, the hook like, curved shape of the power groove 34 as shown in