Claims
- 1. An engine, comprising:a housing having an elongated cavity, the elongated cavity having a first end, a second end, and internal walls extending therebetween; a fixed piston located in the cavity and fixedly attached to the housing, the fixed piston having a first end toward the first end of the cavity and a second end toward the second end of the cavity; a slider slidably disposed within the cavity, the slider having a first end toward the first end of the cavity and a second end toward the second end of the cavity, the slider further having a central channel for slidably receiving the fixed piston, the central channel having a first end adjacent the first end of the fixed piston and a second end adjacent the second end of the fixed piston; a first combustion chamber defined by a space between the first end of the channel and the first end of the fixed piston; a second combustion chamber defined by a space between the second end of the channel and the second end of the fixed piston; a first intake port in the housing, the first intake port in fluid communication with a first intake space defined by the space between the first end of the slider and the first end of the cavity when the slider is slidably disposed toward the second end of the cavity; a second intake port in the housing, the second intake port in fluid communication with a second intake space defined by the space between the second end of the slider and the second end of the cavity when the slider is slidably disposed toward the first end of the cavity; a first exhaust port in the housing, the first exhaust port in fluid communication with the first combustion chamber when the slider is slidably disposed toward the first end of the cavity; a second exhaust port in the housing, the second exhaust port in fluid communication with the second combustion chamber when the slider is slidably disposed toward the second end of the cavity; one or more first intake channels for providing a fluid flow path between the first intake space and the first combustion chamber when the slider is moved toward the first end of the cavity; and one or more second intake channels for providing a fluid flow path between the second intake space and the second combustion chamber when the slider is moved toward the second end of the cavity.
- 2. The engine of claim 1, wherein the first intake port is selectively covered by the slider when the slider is slidably disposed away from the second end of the cavity.
- 3. The engine of claim 1, wherein the second intake port is selectively covered by the slider when the slider is slidably disposed away from the first end of the cavity.
- 4. The engine of claim 1, wherein the first exhaust port is selectively covered by the slider when the slider is slidably disposed away from the first end of the cavity.
- 5. The engine of claim 1, wherein the second exhaust port is selectively covered by the slider when the slider is slidably disposed away from the second end of the cavity.
- 6. The engine of claim 1, wherein the volume of the first combustion chamber increases when the slider travels in a first direction and decreases when the slider travels in a second direction.
- 7. The engine of claim 1, wherein the slider and the fixed piston are configured such that the first exhaust port is at least partially uncovered and the first intake cavity defined by the slider is completely covered when the slider is in a first position, thereby allowing burned gasses within the first combustion chamber to exit the first combustion chamber through the first exhaust port.
- 8. The engine of claim 7, wherein travel by the slider away from the first position in a first direction causes the first intake cavity to be at least partially uncovered while the exhaust port remains uncovered thereby allowing a combustible charge to enter the first combustion chamber.
- 9. The engine of claim 8, wherein the burned gasses exiting the first combustion chamber and the combustible charge entering the first combustion chamber travel in a similar general direction.
- 10. The engine of claim 1, wherein the slider and the fixed piston are configured such that the second exhaust port is at least partially uncovered and a second intake cavity defined by the slider is completely covered when the slider is in a second position, thereby allowing burned gasses within the second combustion chamber to exit the second combustion chamber through the second exhaust port.
- 11. The engine of claim 10, wherein travel by the slider away from the second position in a second direction causes the second intake cavity to be at least partially uncovered while the exhaust port remains uncovered thereby allowing a combustible charge to enter the second combustion chamber.
- 12. The engine of claim 11, wherein the burned gasses exiting the second combustion chamber and the combustible charge entering the second combustion chamber travel in a similar general direction.
- 13. The engine of claim 1, wherein the one or more first intake channels are configured such that a combustible charge flows between the first intake space and the first combustion chamber when the slider is moved toward the first end of the cavity.
- 14. The engine of claim 13, wherein the first intake space and the first combustion chamber are configured such that compression of the combustible charge within the first combustion chamber causes the combustible charge to ignite by spontaneous combustion.
- 15. The engine of claim 13, wherein a volume of the first intake space and a volume of the first combustion chamber are preselected such that compression of the combustible charge within the first combustion chamber causes the combustible charge to ignite by spontaneous combustion.
- 16. The engine of claim 1, wherein the one or more second intake channels are configured such that a combustible charge flows between the second intake space and the second combustion chamber when the slider is moved toward the second end of the cavity.
- 17. The engine of claim 13, wherein the second intake space and the second combustion chamber are configured such that compression of the combustible charge within the second combustion chamber causes the combustible charge to ignite by spontaneous combustion.
- 18. The engine of claim 13, wherein a volume of the second intake space and a volume of the second combustion chamber are preselected such that compression of the combustible charge within the second combustion chamber causes the combustible charge to ignite by spontaneous combustion.
- 19. A micro-engine, comprising:a substrate; a piston formed on the substrate; a slider configured to form one or more combustion chambers between the slider and the piston, the slider adapted to slide back and forth relative to the piston in a cycle; one or more intake ports for selectively providing fuel to the one or more combustion chambers during selected times during the cycle; and one or more exhaust ports for selectively venting exhaust from the one or more combustion chambers during selected times during the cycle.
- 20. A method for forming a micro-engine, comprising the steps of:providing a substrate; forming a piston and a slider on the substrate, the slider surrounded by a sacrificial layer; and etching away the sacrificial layer to free the slider.
- 21. A micro-engine, comprising:a substrate having a plurality of housing walls, a fixed piston and a channel therebetween; a slider configured to form one or more combustion chambers between the slider and the fixed piston, the slider adapted to slide back and forth within the channel relative to the fixed piston in a cycle; one or more intake ports for selectively providing fuel to the one or more combustion chambers during selected times during the cycle; and one or more exhaust ports for selectively venting exhaust from the one or more combustion chambers during selected times during the cycle.
- 22. A method for forming a micro-engine, comprising the steps of:providing a substrate; etching the substrate to form a plurality of first intake channels and a plurality of second intake channels; forming a plurality of housing walls and a fixed piston on the substrate; providing a first sacrificial layer on top of the substrate proximal the plurality of housing walls and the fixed piston; providing a slider on top of the first sacrificial layer; providing a second sacrificial layer on top of the slider; providing a cover on top of the plurality of housing walls, the fixed piston, and the second sacrificial layer; etching the substrate to form one or more exhaust ports and one or more intake ports; and removing the first sacrificial layer to release the slider.
- 23. A method for forming a micro-engine, comprising the steps of:providing a substrate having a top surface and a bottom surface; etching the top surface of the substrate to form a plurality of housing walls and a fixed piston; etching the substrate to form a plurality of first intake channels and a plurality of second intake channels; providing a first sacrificial layer on top of the substrate proximate the plurality of housing walls and the fixed piston; providing a slider on top of the first sacrificial layer; providing a second sacrificial layer on top of the slider; providing a cover on top of the plurality of housing walls, the fixed piston, and the second sacrificial layer; etching the bottom surface of the substrate to form one or more exhaust ports and one or more intake ports; and removing the first sacrificial layer and the second sacrificial layer to release the slider.
Government Interests
The Government may have rights in this invention pursuant to Contract No. F30602-99C-0200.
US Referenced Citations (17)
Foreign Referenced Citations (2)
Number |
Date |
Country |
WO 9418433 |
Aug 1994 |
WO |
WO 9943936 |
Sep 1999 |
WO |