IP Library › Granted Patent US 9,046,055
Granted Patent B2
US 9,046,055 · App. 13/263,153 · Granted Jun 2, 2015

Heat engine

Inventors: Rikard Mikalsen (Hamburg, DE); Anthony Paul Roskilly (Longhorshy, GB)
Assignee: University of Newcastle Upon Tyne
F02G1/02F02G3/02
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Quick Facts
Patent No.
US 9,046,055
App. No.
13/263,153
Granted
Jun 2, 2015
Kind
B2
Abstract

A heat engine comprising compressor and expander displacement elements ( 210, 211 ) reciprocating in respective compression and expansion chambers ( 111, 111′, 102, 102′ ) and arranged in a linear, free piston configuration, a combustor ( 116 ) separate from the compression and expansion chambers ( 111, 111′, 102, 102′ ), and a linear energy conversion device ( 212, 213 ) providing conversion of solid, liquid, or gaseous fuel into hydraulic, electric, or pneumatic energy by means of subjecting a working fluid to a thermodynamic cycle with substantially constant pressure combustion. The inlet and outlet valves of the compression chamber ( 102, 102′ ) and the rate of fuel injection to the combustor ( 116 ) are actively controlled by an electronic controller to avoid engine damage, and to maintain thermodynamic efficiency over a wide range of loads.

Claims (47)

1. A heat engine comprising:

a compression chamber;

a first positive displacement element reciprocable within said compression chamber;

an expansion chamber;

a second positive displacement element reciprocable within said expansion chamber;

wherein said first and second positive displacement elements are mechanically coupled to reciprocate in unison in a free-piston configuration;

at least one conduit for conducting a working fluid from said compression chamber to said expansion chamber;

at least one heating device for supplying heat to the working fluid in a heating section of said at least one conduit;

at least one first valve for controlling the flow of said working fluid into said compression chamber;

at least one second valve for controlling the flow of said working fluid from said compression chamber to said heating section;

at least one third valve for controlling the flow of said working fluid from said heating section to said expansion chamber;

at least one fourth valve for controlling the flow of said working fluid out of said expansion chamber;

a sensor adapted to output a signal corresponding to a position and/or velocity of the first and/or second positive displacement element; and

a controller for continuously controlling said at least one third valve and/or said at least one fourth valve and/or the rate of supply of heat to the working fluid in accordance with the signal output by the sensor;

wherein the second positive displacement element divides the expansion chamber into two expansion subchambers, and wherein said at least one third valve is adapted to control the flow of said working fluid alternately to each expansion subchamber.

2. A heat engine according to claim 1 , wherein the heat engine operates on an open cycle.

3. A heat engine according to claim 1 , wherein said at least one heating device is a combustor.

4. A heat engine according to claim 3 , wherein the controller is adapted to continuously control the supply of heat to the working fluid by outputting a signal for continuously controlling a rate of fuel injection to the combustor.

5. A heat engine according to claim 1 , wherein the controller controls said at least one first valve, said at least one second valve, said at least one third valve and said at least one fourth valve.

6. A heat engine according to claim 1 , wherein the first positive displacement element divides the compression chamber into two compression subchambers, and wherein said at least one first valve is adapted to control the flow of working fluid alternately to each compression subchamber.

7. A heat engine according to claim 1 , further comprising an energy conversion device comprising at least one reciprocable element coupled for reciprocation with said first and second positive displacement elements.

8. A heat engine according to claim 7 , wherein said energy conversion device is positioned between the compression chamber and the expansion chamber.

9. A heat engine according to claim 1 , further comprising a heat exchanger for transferring heat from working fluid conducted from the expansion chamber to working fluid conducted from the compression chamber.

10. A heat engine according to claim 1 , wherein the controller is adapted to adjust the timings of opening and/or closing said at least one third valve and/or said at least one fourth valve and/or to adjust the rate of input of heat to the working fluid to maintain stable engine operation, when the signal output by the sensor indicates a change in kinetic energy of the first and second positive displacement elements corresponding to a change in load force on the first and/or second positive displacement element.

11. A heat engine according to claim 1 , wherein the controller is adapted to advance closure of said at least one fourth valve, when the signal output by the sensor indicates an increase in kinetic energy of the first and second positive displacement elements sufficient for the second positive displacement element to travel past a predefined end point.

12. A heat engine according to claim 1 , wherein the controller is adapted to delay closure of the said at least one third valve, when the signal output by the sensor indicates a decrease in kinetic energy of the first and second positive displacement elements sufficient for the second positive displacement element to fail to reach a predefined end point.

13. A heat engine comprising:

a compression chamber;

a first positive displacement element reciprocable within said compression chamber;

an expansion chamber;

a second positive displacement element reciprocable within said expansion chamber;

wherein said first and second positive displacement elements are mechanically coupled to reciprocate in unison in a free-piston configuration;

at least one conduit for conducting a working fluid from said compression chamber to said expansion chamber;

at least one heating device for supplying heat to the working fluid in a heating section of said at least one conduit;

at least one first valve for controlling the flow of said working fluid into said compression chamber;

at least one second valve for controlling the flow of said working fluid from said compression chamber to said heating section;

at least one third valve for controlling the flow of said working fluid from said heating section to said expansion chamber;

at least one fourth valve for controlling the flow of said working fluid out of said expansion chamber;

a sensor adapted to output a signal corresponding to a position and/or velocity of the first and/or second positive displacement element;

a controller for continuously controlling said at least one third valve and/or said at least one fourth valve and/or the rate of supply of heat to the working fluid in accordance with the signal output by the sensor; and

wherein the controller is adapted to advance closure of said at least one fourth valve, when the signal output by the sensor indicates an increase in kinetic energy of the first and second positive displacement elements sufficient for the second positive displacement element to travel past a predefined end point.

14. A heat engine according to claim 13 , wherein the heat engine operates on an open cycle.

15. A heat engine according to claim 13 , wherein said at least one heating device is a combustor.

16. A heat engine according to claim 15 , wherein the controller is adapted to continuously control the supply of heat to the working fluid by outputting a signal for continuously controlling a rate of fuel injection to the combustor.

17. A heat engine according to claim 13 , wherein the controller controls said at least one first valve, said at least one second valve, said at least one third valve and said at least one fourth valve.

18. A heat engine according to claim 13 , further comprising an energy conversion device comprising at least one reciprocable element coupled for reciprocation with said first and second positive displacement elements.

19. A heat engine according to claim 13 , wherein the controller is adapted to delay closure of the said at least one third valve, when the signal output by the sensor indicates a decrease in kinetic energy of the first and second positive displacement elements sufficient for the second positive displacement element to fail to reach a predefined end point.

Assignments (3)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 10, 2026
From: THE UNIVERSITY OF DURHAM
To: H2CHP LIMITED
Reel/Frame 075231/0299 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 23, 2021
From: UNIVERSITY OF NEWCASTLE UPON TYNE
To: THE UNIVERSITY OF DURHAM
Reel/Frame 057580/0462 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Sep 7, 2012
From: MIKALSEN, RIKARD; ROSKILLY, ANTHONY PAUL
To: UNIVERSITY OF NEWCASTLE UPON TYNE
Reel/Frame 028916/0246 →
Priority Claims (1)
GB 0905959.3 · Apr 7, 2009 · national
Continuity (1)
Related Publication 20120024264A1 · Feb 2, 2012