The present disclosure relates to intake ports. More specifically, the present disclosure relates to intake ports for a diesel engine.
In a typical diesel engine for a motor vehicle, the engine includes multiple combustion chambers in which air and fuel are mixed and combustion occurs from the compression of the air and fuel mixture. Generally, one or more intake ports directs airflow into the combustion chamber. As the air flows into the combustion chamber from the intake ports, a swirl flow pattern of the airflow is generated in the combustion chamber. Such swirl flow patterns result in higher temperature gradients and heat flux during the combustion process, which increases heat loss and reduces the efficiency of the diesel engine.
Thus, while current diesel engines achieve their intended purpose, there is a need for a new and improved system to direct airflow into the diesel engine to reduce heat loss from the engine, thereby increasing the efficiency of the engine.
According to several aspects, an apparatus that controls a swirl ratio in a diesel engine for a motor vehicle includes a first intake port that directs a first airflow into a combustion chamber, and a second intake port that directs a second airflow into the combustion chamber. The first and second intake ports are arranged to direct the first airflow and the second airflow such that a desired swirl ratio is achieved in the combustion chamber.
In an additional aspect of the present disclosure, the first airflow is a tangential airflow in a first direction.
In another aspect of the present disclosure, the second airflow is a tangential airflow in a second direction.
In another aspect of the present disclosure, the second direction is an opposing direction to the first direction.
In another aspect of the present disclosure, the first and second intake ports are rotated about respective axes to arrange the first and second intake ports.
In another aspect of the present disclosure, the first intake port includes a first swirl valve that controls a flowrate of the first airflow from the first intake port into the combustion chamber.
In another aspect of the present disclosure, the second intake port includes a second swirl valve that controls a flowrate of the second airflow from the second intake port into the combustion chamber.
In another aspect of the present disclosure, the swirl ratio has a range between about 0 and 2.5.
In another aspect of the present disclosure, the swirl ratio is about 0.
According to several aspects, an apparatus that controls a swirl ratio in a diesel engine for a motor vehicle includes a first intake port that directs a first airflow into a combustion chamber, the first airflow being a tangential airflow in a first direction, and a second intake port that directs a second airflow into the combustion chamber, the second airflow being a tangential airflow in a second direction, the second direction being an opposing direction to the first direction. The first and second intake ports are arranged to direct the first airflow and the second airflow such that a desired swirl ratio is achieved in the combustion chamber.
In another aspect of the present disclosure, the first and second intake ports are rotated about respective axes to arrange the first and second intake ports.
In another aspect of the present disclosure, the first intake port includes a first swirl valve that controls a flowrate of the first airflow from the first intake port into the combustion chamber.
In another aspect of the present disclosure, the second intake port includes a second swirl valve that controls a flowrate of the second airflow from the second intake port into the combustion chamber.
In another aspect of the present disclosure, the swirl ratio has a range between about 0 and 2.5.
In another aspect of the present disclosure, the swirl ratio is about 0.
According to several aspects, a diesel engine for a motor vehicle includes a first intake port that directs a first airflow into a combustion chamber, the first intake port including a first swirl valve that controls a flowrate of the first airflow from the first intake port into the combustion chamber, the first airflow being a tangential airflow in a first direction; and a second intake port that directs a second airflow into the combustion chamber, the second intake port including a second swirl valve that controls a flowrate of the second airflow from the second intake port into the combustion chamber, the second airflow being a tangential airflow in a second direction. The first and second intake ports are arranged to direct the first airflow and the second airflow such that a desired swirl ratio is achieved in the combustion chamber.
In another aspect of the present disclosure, the second direction is an opposing direction to the first direction.
In another aspect of the present disclosure, the first and second intake ports are rotated about respective axes to arrange the first and second intake ports.
In another aspect of the present disclosure, the swirl ratio has a range between about 0 and 2.5.
In another aspect of the present disclosure, the swirl ratio is about 0.
Further areas of applicability will become apparent from the description provided herein. It should be understood that the description and specific examples are intended for purposes of illustration only and are not intended to limit the scope of the present disclosure.
The drawings described herein are for illustration purposes only and are not intended to limit the scope of the present disclosure in any way.
The following description is merely exemplary in nature and is not intended to limit the present disclosure, application, or uses.
Referring to
The intake port 18 directs an airflow into the combustion chamber through the cylinder head 12, and the intake port 20 also directs an airflow into the combustion chamber through the cylinder head 12 as well. The intake ports 18 and 20 are arranged to direct the two airflows to achieve a desired swirl ratio in the combustion chamber. For example, in certain arrangements, the intake port 18 directs a tangential airflow, that is, tangentially to the interior surface of the combustion chamber in one direction, while the intake port 20 also directs a tangential airflow into the combustion chamber. By rotating the intake port 18 about the axis 21 and the intake port 20 about the axis 23, where the axes 21 and 23 extend out of the page as shown in
In contrast to the arrangement shown in
Turning now to
In various arrangements, one or both intake ports 218 and 220 includes a swirl valve 222 shown in
The swirl ratio in the combustion chamber 223 versus the swirl valve position for a swirl valve 222 implemented in the intake port 220 for both numerically calculated 230 and experimentally measured 228 values is exhibited in the graph shown in
Intake ports for diesel engines according to present disclosure offers several advantages. These include providing a larger region on the cylinder head for various packaging constraints such as, for example, bolts, water jackets and/or glow plugs. Further, such intake ports, enable an efficient arrangement to obtain any desired swirl ratio with a combustion chamber of a diesel engine.
In the claims and specification, certain elements are designated as “first” and “second”. These are arbitrary designations intended to be consistent only in the section in which they appear, i.e. the specification or the claims or the summary, and are not necessarily consistent between the specification, the claims, and the summary. In that sense they are not intended to limit the elements in any way and a “second” element labeled as such in the claim may or may not refer to a “second” element labeled as such in the specification. Instead, the elements are distinguishable by their disposition, description, connections, and function.
The description of the present disclosure is merely exemplary in nature and variations that do not depart from the gist of the present disclosure are intended to be within the scope of the present disclosure. Such variations are not to be regarded as a departure from the spirit and scope of the present disclosure.