IP Library Granted Patent US 10,253,686
Granted Patent B2
US 10,253,686 · App. 15/383,397 · Granted Apr 9, 2019

Hybrid cycle combustion engine and methods

Inventors: Alexander C. Shkolnik (Wilmington, MA); Nikolay Shkolnik (West Hartford, CT)
Assignee: LiquidPiston, Inc.
F02B53/02F01C1/22F01C9/002F01C21/04F01L7/026F02B17/005F02B25/08F02B51/02F02B55/14F02B75/00F02B75/02F02M25/03F02M31/02F01L2101/00F02B2075/025F02B2075/027Y02T10/12Y02T10/121Y02T10/126Y02T10/17
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Quick Facts
Patent No.
US 10,253,686
App. No.
15/383,397
Granted
Apr 9, 2019
Kind
B2
Abstract

A method of operating an internal combustion engine having a housing, a piston mounted in the housing for complex motion about a plurality of axes and coupled to a shaft, and wherein occur phases of compression, combustion, and expansion in the housing, and wherein, in the compression phase, air introduced through an intake port into the housing is compressed by reducing volume of a compression chamber in the housing from an initial volume to a second volume that is less than the initial volume, and in the expansion phase, byproducts of combustion expand from the second volume to a third volume that is greater than the initial volume.

Claims (12)

1. A method of operating an internal combustion engine having a housing, a piston mounted in the housing for complex motion about a plurality of axes and coupled to a shaft, and wherein occur phases of compression, combustion, and expansion in the housing, and wherein, in the compression phase, air introduced through an intake port into the housing is compressed by reducing volume of a compression chamber in the housing from an initial volume to a second volume that is less than the initial volume, and wherein the housing includes an exhaust port through which are passed gases resulting from combustion of fuel during the combustion phase, the method comprising:

providing a recess in the housing and configuring the piston so that during the complex motion of the piston, the piston at least in part covers the recess during the combustion phase, at least a portion of the recess forming a constant volume combustion chamber;

introducing the fuel into the recess, the fuel mixing with compressed air to form a mixture of compressed air and fuel;

igniting the mixture of compressed air and fuel in the combustion phase; and

during the expansion phase, defining an expansion chamber volume that undergoes expansion of gases from combustion while the expansion chamber volume increases to a third volume that is larger than the initial volume; and

wherein, over a rotation of the shaft, the initial, second and third volumes are defined in differing amounts for the phases of compression, combustion and expansion, in a manner that is smooth and continuous.

2. A method of operating an internal combustion engine according to claim 1 , wherein the piston is a rotor.

3. A method of operating an internal combustion engine according to claim 2 , wherein the rotor has a plurality of lobes.

4. A method of operating an internal combustion engine according to claim 1 , further comprising using an energy recovery system to increase temperature of the fuel before it is introduced to the recess.

5. A method of operating an internal combustion engine according to claim 4 , further comprising using the energy recovery system to further reduce temperature of the gases from the combustion in the combustion phase.

6. A method of operating an internal combustion engine according to claim 4 , wherein using the energy recovery system further includes causing thermo-chemical decomposition of gaseous fuel.

7. A method of operating an internal combustion engine according to claim 4 , wherein using the energy recovery system further includes causing a catalyst-assisted reaction to occur at a temperature between about 450 degrees C. and about 750 degrees C.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jan 23, 2019
From: SHKOLNIK, ALEXANDER C.; SHKOLNIK, NIKOLAY
To: LIQUIDPISTON, INC.
Reel/Frame 048107/0654 →
Continuity (5)
Continuation 14326161 · Jul 8, 2014
Continuation 13758122 · Feb 4, 2013
Continuation 10585704
Provisional Application 60535891 · Jan 12, 2004
Related Publication 20170096933A1 · Apr 6, 2017