The invention relates to a cooling channel piston for a diesel engine with direct injection.
Up to the present time, such pistons have mostly been structured as cast aluminum pistons or as so-called pendulum shaft pistons, and have been used as standard items by many motor vehicle manufacturers.
The invention deals with the problem of finding a piston concept that allows a reduction in the compression height of the piston, while keeping the engine output the same, or increasing it.
This problem is solved, in the case of a piston of the type according to the preamble, by means of a structure having the features indicated in claim 1. Advantageous further developments are the object of the dependent claims. The compression height of pistons according to the invention lies in the range of 0.35 to 0.6× piston diameter, and preferably at approximately 0.4 to 0.45× piston diameter (D).
The second part, which contains the combustion trough, can be structured as a machined forged part.
The invention will be explained in greater detail below, using an exemplary embodiment. The drawing shows:
The piston 1 consists of a base body 2 and a component 3 that is soldered to the former, which component comprises a combustion trough 4 and a part of the piston head 5. The base body comprises the hubs 6 with the hub bores 7, the shaft 8, the ring part 9, and the ridges 10, which form part of the inside shape of the piston on the pressure side and the counter-pressure side. The ridges 10 run at the same or approximately the same axial height, radially towards the inside, and form a contact surface for the component 3 in the pressure/counter-pressure direction. The combustion trough 4 lies circumferentially on machined surfaces of the ridges 10 with its lower region, and makes contact in the region of the hubs or hub support, whereby the machined surfaces of the ridges and the hub support lie in a single plane, and a turned groove with a height difference 14 is formed in the ridges as a result of the machining.
In other embodiments according to the invention, the combustion trough can also rest on the hub support and the ridges 10 only locally, instead of circumferentially.
The shaft of the piston is recessed in the pin direction and forms a box shape. The base body 2, and the component 3 soldered to it, together form a cooling channel 11 that can be filled with motor oil.
The base body 2 consists of forged AFP steel. The component 3 also consists of steel, but can also consist of a nickel-based material that is resistant to high temperatures.
The base body 2 and the component 3 are connected with one another by means of a radial solder seam 12 and an axial solder seam 13.
The central part of the combustion trough 4 forms part of the interior shape of the piston, with its surfaces that face downward.
The compression height of the piston is 0.43×D.
Number | Date | Country | Kind |
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100 63 568 | Dec 2000 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCTDE01/02261 | 6/16/2001 | WO | 00 | 10/8/2003 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO0250414 | 6/27/2002 | WO | A |
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Number | Date | Country | |
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20040045515 A1 | Mar 2004 | US |