The invention relates to an internal combustion engine according to the preamble of claim 1.
In internal combustion engines having single-stage or multi-stage turbocharging, a vacuum is generated in the engine intake line in certain operating states, such as the engine overrun or braking mode, as a result of an insufficient supply of air, and the engine therefore sucks air and also oil out of the compressor and bearing housing of the turbocharger (or in the case of two-stage turbocharging, out of the compressor and bearing housing of the high-pressure stage), which oil is burned in the combustion chambers. The exhaust-gas values of the internal combustion engine and the oil consumption of the turbocharger are accordingly impaired.
In contrast to this, it is an object of the present invention to create a turbocharged internal combustion engine according to the preamble of claim 1 which enables a sufficient supply of intake air in particular in the engine braking mode and thereby prevents the impairment of the exhaust-gas values and the drastic rise in oil consumption of the exhaust-gas turbocharger.
Said object is achieved by means of the features of claim 1.
The design according to the invention of a controllable bypass arrangement results in a sufficient air supply to the internal combustion engine in the engine braking mode in that ambient air is sucked in via a bypass arrangement past the high-pressure and low-pressure compressors and is supplied to the air intake section of the internal combustion engine.
The subclaims relate to advantageous refinements of the invention.
The supply of air via the bypass arrangement according to the invention can be controlled by means of a bypass valve. The control may be provided either by means of an independent controller in the event of a vacuum occurring in the engine intake line or by means of a separate control cell/control valve which may for example be connected directly to the intake manifold or else to the high-pressure compressor. Alternatively, control which is dependent on the position of the brake flap may be provided by means of a position sensor and a PWM valve. Furthermore, electric control of the bypass valve by means of the engine control unit and an actuation of the bypass valve by means of an actuating motor or solenoid valve are possible.
Further details, features and advantages of the invention can be gathered from the following description of an exemplary embodiment on the basis of the drawing, in which:
An air intake line 3 leads from the compressor 7 of the high-pressure stage HP to the air intake section 2 of the internal combustion engine 1. An air supply line 10 of a bypass arrangement 9 opens downstream of the compressor 7 in the flow direction R, via the air filter 11 of which air supply line 10 ambient air AA can be introduced into the air intake line 3. A bypass valve 12 is also arranged in the air supply line 10.
In the event of a vacuum occurring in the engine braking mode at the side of the compressor 7 which is connected to the port 29, the valve body 21 is lifted up from the sealing seat 32 of the valve housing 22 and the ambient air AA from the air supply line 10 which is connected to the port 31 passes into the valve housing 22 and is supplied via the port 30 and the air intake line 3 to the air intake section 2 of the internal combustion engine 1. In this way, the deficient air supply to the air intake section 2 of the internal combustion engine 1 in the braking mode is prevented by means of the supply of additional air through the bypass arrangement 9, the oil loss via the compressor 7 is prevented and compliance with the correct exhaust-gas emissions values is ensured.
To complete the disclosure, reference is also explicitly made to the diagrammatic illustration of the invention in
Number | Date | Country | Kind |
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102009010650.2 | Feb 2009 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US2010/024660 | 2/19/2010 | WO | 00 | 8/19/2011 |